SURFACE CLEANER
During an evacuation mode of operation of a hand vacuum cleaner, an evacuation air flow path extends from an evacuation air inlet through at least the debris separator to the docking station. A return air path extends from the docking station air outlet to the suction motor of the hand vacuum cleaner whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path. A valve is operable between a closed position in which the hand vacuum cleaner is operable to clean the surface and an evacuation position in which the return air flow path is in air flow communication with the motor and fan assembly. The motor and fan assembly and the return air path are provided at a lower end of the hand vacuum cleaner.
This application claims the benefit of US Provisional Patent Application No. 63/752,271 filed on Jan. 31, 2025, the disclosure of which is incorporated herein.
FIELDThis disclosure relates generally to surface cleaner. In a preferred embodiment, the surface cleaner comprises a portable surface cleaner, such as a hand vacuum cleaner.
INTRODUCTIONThe following is not an admission that anything discussed below is part of the prior art or part of the common general knowledge of a person skilled in the art.
Various types of surface cleaners are known, including upright surface cleaners (e.g., upright vacuum cleaners or extractors), canister surface cleaners (e.g., canister vacuum cleaners or extractors), stick surface cleaner, central vacuum cleaners, and hand carriable surface cleaners such as hand vacuum cleaners. Further, various designs for cyclonic hand vacuum cleaners, including battery operated cyclonic hand vacuum cleaners, are known in the art.
SUMMARYThis summary is intended to introduce the reader to the more detailed description that follows and not to limit or define any claimed or as yet unclaimed invention. One or more inventions may reside in any combination or sub-combination of the components or process steps disclosed in any part of this document including its claims and figures.
In accordance with one aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has an air treatment assembly (e.g., one or more air treatment chambers), a motor and fan assembly, and one or more energy store(s). One or more energy store(s) and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner, such as at the lower end of or below the lower end of the handle. One or more or all of the energy store(s) may be aligned with the motor and fan assembly such that a line, which is parallel to a hand vacuum cleaner axis that extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, extends through one or more or all of the energy store(s) and the motor and fan assembly.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has a motor and fan assembly, a handle, and one or more or all of the energy store(s). A hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner. The energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner (e.g., at the lower end of or below the lower end of the handle) and a plane that is transverse to the hand vacuum cleaner axis extends through one or more or all of the energy store(s) and the motor and fan assembly and, optionally, the handle.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner and a plane that is transverse to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has a dirty air inlet, when a hand vacuum cleaner is oriented with the dirty air inlet at an upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, in operation, air travels downwardly from the air treatment chamber to the pre-motor filter. The pre-motor filter may fully or partially underlie one or more of the air treatment chamber, an optional finger gap which is located forward of the handle, one or more optional energy stores and the handle. Further, the pre-motor filter may be aligned with one or more of energy stores and the motor and fan assembly such that a line, which is parallel to a hand vacuum cleaner axis that extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, extends through one or more or all of the energy store(s) and the motor and fan assembly.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a pre-motor filter;
- (d) a motor and fan assembly provided in the air flow path; and,
- (e) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at an upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, in operation air travels downwardly from the air treatment chamber to the pre-motor filter.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has an air treatment assembly, a handle, and one or more energy store(s). The energy store(s) is provided at a lower end of the hand vacuum cleaner (e.g., at the lower end of or below the lower end of the handle). A hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from a front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner. The air treatment assembly has an openable door which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening. A line that is parallel to the hand vacuum cleaner axis may extend through the opening and one or more energy store(s). The air treatment assembly may comprise an air treatment chamber and a dirt collection chamber exterior to the air treatment chamber. The door may open the dirt collection chamber or both the air treatment chamber and the dirt collection chamber. In either case, a line that is parallel to the hand vacuum cleaner axis may extend through a portion of the dirt collection chamber that underlies the air treatment chamber and one or more energy store(s).
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the opening and the energy store.
In accordance with this aspect, there is also provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path and a dirt collection chamber exterior to the air treatment chamber, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, a portion of the dirt collection chamber is positioned below the air treatment chamber, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the portion of the dirt collection chamber and the energy store.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner an air treatment chamber and a dirt collection chamber exterior to the air treatment chamber wherein some or all of the dirt collection chamber is at a lower elevation than the air treatment chamber and some or all of the dirt collection chamber may underlie the air treatment chamber. Part of the front end of the hand vacuum cleaner (e.g., part of a front wall) may be an openable door. The door is at a lower end of the hand vacuum cleaner such that only the portion of the dirt collection chamber that is at a lower elevation than the air treatment chamber is opened and a front side of the air treatment chamber is not opened. Optionally, a lower end of the air treatment chamber may be opened. One or more of the motor and fan assembly, one or more energy stores and a pre-motor filter may be aligned with the door such that a line, which is parallel to a hand vacuum cleaner axis that extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, extends through one or more or all of the energy store(s), the motor and fan assembly and the pre-motor filter.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising a front wall, an air treatment chamber that is provided in the air flow path, and a dirt collection chamber exterior to the air treatment chamber, wherein the dirt collection chamber has a front wall, the air treatment chamber comprises a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a motor and fan assembly provided in the air flow path; and,
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and at least one of the motor and fan assembly and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the air treatment assembly has a first openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening, and
- wherein the front wall of the air treatment assembly has a stationary portion, which remains in position when the first openable portion is opened, and a moveable portion, the first openable portion comprises the moveable portion of the front wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the moveable portion of the front wall extends downwardly from a location at or below an elevation of the air treatment chamber, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the opening and at least one of the motor and fan assembly and the energy store.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has an air treatment assembly and one or more energy store(s). The energy store(s) is provided at a lower end of the hand vacuum cleaner (e.g., partially or fully at a lower elevation than an air treatment chamber and/or a dirt collection chamber that is exterior to the air treatment chamber and partially or fully may underlie one or both thereof). Optionally, one or more energy store(s) may be at a lower elevation than (e.g., underlie) the air treatment chamber and be located partially or fully rearwardly of the dirt collection chamber.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a plane that is transverse to the hand vacuum cleaner axis extends through the air treatment assembly and the energy store.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has an air treatment assembly, a motor and fan assembly, and a handle. The motor and fan assembly is provided at a lower end of the hand vacuum cleaner (e.g., at or below an elevation of a lower end of the handle and may partially or fully underlie the handle). A downstream air flow path extends downstream from the air treatment assembly through part or all of a hand grip portion of a handle to the motor and fan assembly. Optionally one or more energy stores may be located forward or rearward of the motor and fan assembly and at a lower end of the hand vacuum cleaner (e.g., at or below an elevation of the lower end of the handle) In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the motor and fan assembly is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a downstream air flow path extends from the air treatment assembly to the motor and fan assembly and the downstream air flow path comprises a conduit provided in the handle.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has a motor and fan assembly, a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path, and a valve operable between a closed position in which the hand vacuum cleaner is operable to clean a surface and an evacuation position in which the return air flow path is in air flow communication with the motor and fan assembly. The return air path and the valve are provided at a lower end of the hand vacuum cleaner. The valve may be located in the lower surface of the hand vacuum cleaner and the inlet port of the return air path may be rearward of the motor and fan assembly or may be forward of the motor and fan assembly and the return air path may extend rearwardly through the vacuum cleaner at a location under the motor and fan assembly.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path; and,
- (f) a valve operable between a closed position in which the hand vacuum cleaner is operable to clean a surface and an evacuation position in which the return air flow path is in air flow communication with the motor and fan assembly,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner and, when the hand vacuum cleaner axis is oriented horizontally, the motor and fan assembly and the return air path are provided at a lower end of the hand vacuum cleaner.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has a main body housing a motor and fan assembly, a handle, and optionally one or more energy store(s). A hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from a front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner. One or both of one or more energy store(s) and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner (e.g. at or below an elevation of a lower end of an air treatment chamber and/or a lower end of the handle and may optionally underlie the lower end of an air treatment chamber and/or the lower end of the handle). The motor and fan assembly may be positioned forward or rearward of one or more energy store(s) or the motor and fan assembly may be at a higher or lower elevation than one or more energy store(s).
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a main body housing a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with the main body,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner and a first plane that is transverse to the hand vacuum cleaner axis extends through at least one of the energy store and the motor and fan assembly, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
In accordance with this aspect, there is also provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a main body housing a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with the main body,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner and a first plane that is transverse to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has one or more energy store(s). The energy store(s) has a length, a width and a height and the length is a longest dimension of the energy store(s). A hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner. When the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner, the longest dimension of one or more or all of the energy store(s) extends generally vertically. One or more of the energy store(s) may be provided at the lower end of the hand vacuum cleaner.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a main body housing a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with the main body, the energy store having a length, a width and a height and the length is a longest dimension of the energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store is provided at a lower end of the hand vacuum cleaner and a first plane that is transverse to the hand vacuum cleaner axis extends through the motor and fan assembly and the handle, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner, the energy store provided at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the longest dimension extends generally vertically.
In accordance with this aspect, there is also provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with a main body, the energy store having a length, a width and a height and the length is a longest dimension of the energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at an upper end of the hand vacuum cleaner, the energy store provided at a lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, a lower end of the handle is provided on the main body and the longest dimension extends generally vertically.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a hand vacuum cleaner has an air treatment chamber (e.g., a cyclone) and a pre-motor filter. A hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from a front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner. The pre-motor filter is curved (e.g., an annular sector) and may extend around only a portion of the air treatment chamber, e.g., a rearward side thereof. The pre-motor filter may have pleats that extend laterally or from an upper end of the pre-motor filter to a lower end thereof. The pre-motor filter may be adjacent the air treatment chamber or spaced therefrom with an upstream header between the pre-motor filter and the air treatment chamber and the header may have a generally uniform thickness in the axial direction.
In accordance with this aspect, there is provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) a cyclone assembly comprising a cyclone chamber provided in the air flow path, the cyclone chamber comprising a front end, a rear end, a cyclone chamber air inlet, a cyclone chamber air outlet, a cyclone axis of rotation;
- (c) a pre-motor filter having an upstream face and a downstream face;
- (d) a motor and fan assembly provided in the air flow path; and,
- (e) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the cyclone axis of rotation extends in a plane that is generally transverse to the hand vacuum cleaner axis and, when the hand vacuum cleaner axis extends horizontally, the cyclone axis of rotation extends generally horizontally, and
- wherein the pre-motor filter is curved and is provided on the rear end of the cyclone chamber.
In accordance with this aspect, there is also provided a hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a dirty air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a pre-motor filter having an upstream face and a downstream face;
- (d) a main body housing a motor and fan assembly provided in the air flow path; and,
- (e) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the pre-motor filter is curved and is provided on the rear end of the air treatment chamber.
In accordance with another aspect of this disclosure, which may be used alone or in combination with one or more other aspects, a surface cleaner has a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet, and an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet. When the surface cleaner is docked at a docking station and the surface cleaner is operated in an evacuation mode, air enters through the ambient air inlet port and travels through some or all of an air treatment chamber (e.g., a cyclone), through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port. Optionally, during part or all of the operation of the hand vacuum cleaner in the evacuation mode, the air may bypass the pre-motor filter.
In accordance with this aspect, there is provided a surface cleaner comprising:
-
- (a) a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet with a cyclone assembly comprising a cyclone chamber, a pre-motor filter and a motor and fan assembly that are provided in the air flow path, wherein the surface cleaning mode air flow path comprises a downstream portion that extends from the cyclone chamber to the motor and fan assembly;
- (b) an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet; and,
- (c) a valve assembly operable to open the ambient air inlet port and the docking station return air inlet port,
- wherein a surface cleaner axis extends centrally through the surface cleaner from the front end of the surface cleaner to a rear end of the surface cleaner, and
- wherein the surface cleaner is operable in a surface cleaning mode wherein air travels from the dirty air inlet, through the downstream portion to the clean air outlet, and,
- wherein, when the surface cleaner is docked at a docking station, the surface cleaner is operable in an evacuation mode wherein air enters through the ambient air inlet port, travels through the cyclone in the absence of passing through the pre-motor filter, through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port.
In accordance with this aspect, there is also provided a surface cleaner comprising:
-
- (a) a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet with a cyclone assembly comprising a cyclone chamber, a pre-motor filter and a motor and fan assembly that are provided in the air flow path, wherein the surface cleaning mode air flow path comprises a downstream portion that extends from the cyclone chamber to the motor and fan assembly;
- (b) an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet; and,
- (c) a valve assembly operable to open a cyclone chamber port,
- wherein a surface cleaner axis extends centrally through the surface cleaner from the front end of the surface cleaner to a rear end of the surface cleaner, and
- wherein the surface cleaner is operable in a surface cleaning mode wherein air travels from the dirty air inlet, through the downstream portion to the clean air outlet, and,
- wherein, when the surface cleaner is docked at a docking station, the surface cleaner is operable in an evacuation mode wherein air travels from the ambient air inlet port, through the cyclone chamber port into the cyclone chamber in the absence of passing through the pre-motor filter, through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port.
In accordance with this aspect, there is also provided a surface cleaner comprising:
-
- (a) a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet with an air treatment assembly comprising an air treatment chamber, a pre-motor filter and a motor and fan assembly that are provided in the air flow path, wherein the surface cleaning mode air flow path comprises a downstream portion that extends from the air treatment chamber to the motor and fan assembly;
- (b) an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet; and,
- (c) a valve assembly operable to open an air treatment chamber port,
- wherein a surface cleaner axis extends centrally through the surface cleaner from the front end of the surface cleaner to a rear end of the surface cleaner, and
- wherein the surface cleaner is operable in a surface cleaning mode wherein air travels from the dirty air inlet, through the downstream portion to the clean air outlet, and,
- wherein, when the surface cleaner is docked at a docking station, the surface cleaner is operable in an evacuation mode wherein air travels from the ambient air inlet port, through the air treatment chamber port into the air treatment chamber in the absence of passing through the pre-motor filter, through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port.
These and other aspects and features of various embodiments will be described in greater detail below.
For a better understanding of the described embodiments and to show more clearly how they may be carried into effect, reference will now be made, by way of example, to the accompanying drawings in which:
The drawings included herewith are for illustrating various examples of articles, methods, and apparatuses of the teaching of the present specification and are not intended to limit the scope of what is taught in any way.
DESCRIPTION OF VARIOUS EMBODIMENTSVarious apparatus, methods and compositions are described below to provide an example of an embodiment of each claimed invention. No embodiment described below limits any claimed invention and any claimed invention may cover apparatuses and methods that differ from those described below. The claimed inventions are not limited to apparatus, methods and compositions having all of the features of any one apparatus, method or composition described below or to features common to multiple or all of the apparatus, methods or compositions described below. It is possible that an apparatus, method or composition described below is not an embodiment of any claimed invention. Any invention disclosed in an apparatus, method or composition described below that is not claimed in this document may be the subject matter of another protective instrument, for example, a continuing patent application, and the applicant(s), inventor(s) and/or owner(s) do not intend to abandon, disclaim, or dedicate to the public any such invention by its disclosure in this document.
The terms “an embodiment”, “embodiment”, “embodiments”, “the embodiment”, “the embodiments”, “one or more embodiments,” “some embodiments”, and “one embodiment” mean “one or more (but not all) embodiments of the present invention(s)”, unless expressly specified otherwise.
The terms “including”, “comprising”, and variations thereof mean “including but not limited to”, unless expressly specified otherwise. A listing of items does not imply that any or all of the items are mutually exclusive, unless expressly specified otherwise. The terms “a”, “an”, and “the” mean “one or more”, unless expressly specified otherwise.
As used herein and in the claims, two or more parts are said to be “coupled”, “connected”, “attached”, or “fastened” where the parts are joined or operate together either directly or indirectly (i.e., through one or more intermediate parts), so long as a link occurs. As used herein and in the claims, two or more parts are said to be “directly coupled”, “directly connected”, “directly attached”, or “directly fastened” where the parts are connected in physical contact with each other. None of the terms “coupled”, “connected”, “attached”, and “fastened” distinguish the manner in which two or more parts are joined together.
Furthermore, it will be appreciated that for simplicity and clarity of illustration, where considered appropriate, reference numerals may be repeated among the figures to indicate corresponding or analogous components. In addition, numerous specific details are set forth in order to provide a thorough understanding of the example embodiments described herein. However, it will be understood by those of ordinary skill in the art that the example embodiments described herein may be practiced without these specific details. In other instances, well-known methods, procedures, and components have not been described in detail so as not to obscure the example embodiments described herein. Also, the description is not to be considered as limiting the scope of the example embodiments described herein.
As used herein, the wording “and/or” is intended to represent an inclusive—or. That is, “X and/or Y” is intended to mean X or Y or both, for example. As a further example, “X, Y, and/or Z” is intended to mean X or Y or Z or any combination thereof.
As used herein and in the claims, two components are said to be “parallel” where those components are parallel and spaced apart, or where those components are collinear.
Some components herein may be identified by a part number, which is composed of a base number followed by an alphabetical or subscript-numerical suffix (e.g., 300a, or 3001). Multiple components herein may be identified by part numbers that share a base number in common and that differ by their suffixes (e.g., 3001, 3002, and 3003). All components with a common base number may be referred to collectively or generically using the base number without a suffix (e.g., 300).
It should be noted that terms of degree such as “substantially”, “about”, and “approximately” as used herein mean a reasonable amount of deviation of the modified term such that the end result is not significantly changed. These terms of degree may also be construed as including a deviation of the modified term, such as by 1%, 2%, 5% or 10%, for example, if this deviation does not negate the meaning of the term it modifies. For example, the expressions “substantially perpendicular” and “substantially parallel” mean within 10% of perpendicular and parallel, respectively.
General Description of a Hand Vacuum CleanerThe following is a general description intended to provide a basis for understanding several of the features that are discussed herein. As discussed in detail subsequently, each of the features may be used alone, or in combination, in any embodiment such as the exemplary embodiments described herein.
Optionally, the hand vacuum 100 can be mountable on a base so as to form, for example, an upright vacuum cleaner, a canister vacuum cleaner, a stick vac, a wet-dry vacuum cleaner and the like. The hand vacuum 100 can be either removably or permanently mounted to the base. For example, referring briefly to the example shown in
Referring again to
As exemplified, the hand vacuum 100 may include a main body 118 and an air treatment assembly 120 connected to the main body 118. The hand vacuum 100 may further include a dirty air inlet 122, a clean air outlet 124 rearward of the dirty air inlet 122, and an airflow path 126 extending from the dirty air inlet 122 to the clean air outlet 124. The airflow path 126 may extend through the air treatment assembly 120 and the main body 118.
The airflow path 126 may also extend through one or more operating components of the hand vacuum 100 positioned in the air treatment assembly 120 and/or the main body 118. As shown in
As exemplified, the main body 118 may include a handle 136. The main body 118 may further include a main body housing 138, which defines an interior of the main body 118. One or more of the operating components may be housed within the main body housing 138. Optionally, one or more of the operating components may be housed within an interior of the handle 136 of the main body 118.
The air treatment assembly 120 may be connected to the main body 118 by any suitable means. For example, the air treatment assembly 120 may be permanently rigidly (e.g., integrally), permanently moveably (e.g., pivotably, translateably) or, as shown in
The air treatment assembly 120 may be configured to treat the air in a desired manner, including, for example, removing dirt particles and other debris and/or water from the airflow. To this end, the air treatment assembly 120 may have at least one cleaning stage. Optionally, the air treatment assembly 120 may have two or more cleaning stages arranged in series with each other. Each cleaning stage may include at least one air treatment chamber 140 which can be referred to as a debris separator. Optionally, a cleaning stage may include two or more air treatment chambers 140 arranged in parallel with each other.
Any cleaning stage may be cyclonic. A cyclonic cleaning stage may include at least one cyclonic air treatment chamber 140. Optionally, any cyclonic cleaning stage may include a plurality of cyclonic air treatment chambers 140 fluidically connected in parallel with each other. In such embodiments, the air treatment assembly 120 may alternatively be referred to as a cyclone assembly 120. Similarly, each cyclonic air treatment chamber 140 may alternatively be referred to as a cyclone chamber. For example, in the embodiment illustrated in
Alternately or in addition, any cleaning stage may be a non-cyclonic.
A non-cyclonic cleaning stage may include at least one non-cyclonic air treatment chamber 140. Optionally, any non-cyclonic cleaning stage may include a plurality of non-cyclonic air treatment chambers 140 fluidically connected in parallel with each other.
Within a non-cyclonic air treatment chamber 140, debris is separated from the air flow by changes in the direction of the air flow other than by cyclonic flow. Accordingly, the airflow path 126 may include one or more significant or sudden directional changes (e.g., of at least 45°, 90°, or more) whereby dirt particles with higher momentum than the air are separated (e.g., thrown) from the airflow during each directional change. Accordingly, a non-cyclonic air flow chamber may be referred to as a non-cyclonic momentum separator.
It will be appreciated that a non-cyclonic air treatment chamber 140 may be provided with a porous substrate at the chamber air outlet such as one or more gradings and/or filter media, which may or may not be paired with one another, and may or may not include multiple gradings and/or multiple filter media. In embodiments comprising multiple filter media, the filter media may include any types of filter media commercially available or otherwise known in the art. Some or all of the filter media may be different from one another, combined, stack, shaped, or the like. The porous substrate and potentially the entire chamber may be cleanable, replaceable, washable, sanitized, disinfected, scraped, emptied, or any combinations thereof.
The air treatment assembly 120 may be configured to collect particulate matter separated from the airflow in any suitable location. Optionally, as exemplified, the air treatment assembly 120 may include a dirt collection region 142 internal to the air treatment chamber 140. Alternatively, or in addition, as exemplified, the air treatment assembly 120 may optionally include a dirt collection chamber 144 that is external to the air treatment chamber 140 and connected to the air treatment chamber 140 by a dirt outlet 176 whereby, in operation, dirt (debris) exits the air treatment chamber 140 by the dirt outlet and enters the dirt collection chamber 144.
Where a cleaning stage includes a plurality of air treatment chambers 140, each air treatment chamber 140 may have an individual internal dirt collection region 142 and/or an individual external dirt collection chamber 144. Alternatively, or in addition, the plurality of air treatment chambers 140 may optionally share a common external dirt collection chamber 144. Further, where an air treatment assembly 120 includes a plurality of cleaning stages, each cleaning stage may optionally have a respective external dirt collection chamber 144 common to the air treatment chamber(s) 140 of that cleaning stage or, alternatively, the cleaning stages may share an external dirt collection chamber 144 common to all air treatment chambers 140 of the air treatment assembly 120.
It will be appreciated that if a hand vacuum cleaner has a cleaning stage comprising a cyclone chamber and a further cleaning stage comprising a non-cyclonic momentum separator, then the combination of components when connected to each other may be referred to as a cyclone assembly or an air treatment assembly. Accordingly, in embodiments where the air treatment assembly 120 relies on cyclonic separation, the air treatment assembly 120 may alternatively be referred to as a cyclone assembly 120. If a hand vacuum cleaner has a cleaning stage comprising one or more non-cyclonic momentum separators, then the combination of components when connected to each other may be referred to as an air treatment assembly 120.
It will also be appreciated that the air treatment chamber or chambers and any dirt collection chamber or chambers may be connected together in any manner so as to form the assembly. Accordingly, the some or all of the chambers may be permanently connected to each other, e.g., they may be integrally molded or separately molded and welded or glued to each other. Alternately one or more of the chambers may be removable from another chamber or chambers.
The air treatment assembly 120 may include means for emptying each air treatment chamber 140 and/or dirt collection chamber 144. For example, the air treatment assembly 120 may include one or more openable portions 146 (e.g., doors). Each openable portion 146 may be movably mounted between a closed position, in which the hand vacuum 100 is operable to clean a surface, and an emptying position, in which each air treatment chamber 140 and/or dirt collection chamber 144 may be emptiable. Optionally, an air treatment chamber and its dirt collection chamber are opened concurrently, e.g., by a single door.
When the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the air treatment assembly 120 may have an upper end, a lower end, a front end, a rear end, and laterally opposed ends. In some embodiments, the openable portion 146 may be a front openable portion (e.g., a front openable portion may comprise or consist of part or all a front wall of an air treatment assembly) provided at the front end of the air treatment assembly 120 (see e.g.,
In some embodiments, the air treatment assembly 120 may include a first openable portion 1461 and a second openable portion 1462. The first and second openable portions 146 may be provided at one or more ends of the air treatment assembly 120, such as at different ends or the same end. For example, one of the first openable portion 1461 and the second openable portion 1462 may be a front openable portion provided at the front end and the other of the first and second openable portions 146 may be a lower openable portion provided at the lower end (see e.g.,
Each openable portion 146 may be moveably mounted by a respective mount 147. The mount 147 may be any suitable mechanism for moveably connecting the openable portion 146 to the rest of air treatment assembly 120. For example, as shown in
The mount 147 may be provided at any suitable location which may depend, for example, on the desired location of the openable portion 146 and/or the desired directional motion thereof. For example, if the openable portion 146 is a front openable portion, the mount 147 may be provided proximate an upper end of the front openable portion such that the front openable portion may rotate forwardly and upwardly (see e.g.,
Optionally, each openable portion 146 can be secured in the closed position using any suitable type of lock, such as a latch that can be released by a user. An actuator for opening/releasing the openable portion can be provided on the air treatment assembly 120 itself, on the main body 118, or on any other portion of the hand vacuum 100 and/or on a docking station. Each openable portion 146 may share a common lock and actuator such that the openable portions are concurrently operable. Alternatively, each openable portion 146 may have an individual lock and actuator such that the openable portions are operable independently from each other.
If the openable portion 146 is an independently operable front openable portion, the user may empty air treatment chamber 140 and/or dirt collection chamber 144 by holding the handle 136 with one hand and positioning the front openable portion over a refuse bin (i.e., with the hand vacuum 100 oriented with the rear end 110 at an elevation above the front end 108), and actuating the lock (e.g., with the same hand or the other hand) to allow the front openable portion to move to the emptying (open) position and the contents of the air treatment chamber 140 and/or dirt collection chamber 144 to fall downwardly from the front end 108 of the hand vacuum 100 through the opening of the front openable portion and into the refuse bin below.
Similarly, if the openable portion 146 is an independently operable lower openable portion, the user may empty the air treatment chamber 140 and/or dirt collection chamber 144 by holding the handle 136 with one hand and positioning the lower openable portion over a refuse bin (i.e., with the hand vacuum 100 oriented with the upper end 112 at an elevation above the lower end 114), and actuating the lock to allow the lower openable portion to move to the emptying position such that the collected particulate matter may fall downwardly from the lower end 114 of the hand vacuum 100 through the opening of the lower openable portion and into the refuse bin below.
Optionally, the air treatment assembly 120 may be removed from the main body 118 prior to emptying. Removing the air treatment assembly 120 may optionally open one or more of the air treatment chamber 140 and/or dirt collection chamber 144 for emptying. Alternatively, the air treatment chamber 140 and/or dirt collection chamber 144 may remain closed when the air treatment assembly 120 is removed from the main body 118 (other than air inlets and air outlets). In such embodiments, the air treatment assembly 120 may be subsequently transported to a refuse bin for emptying via the one or more openable portions 146.
Optionally, the openable portion 146 or, if more than one is provided, at least one of the openable portions 146 may be automatically moveable between the closed position and the emptying position. An automatically moveable openable portion may also be referred to as an automatic openable portion 146 or automatic door. An openable portion 146 of the air treatment assembly 120 may “automatically” move between its closed and emptying positions upon docking to a docking station (also referred to as an automatic emptying machine), upon the instigation of an operating system of the docking station or hand vacuum 100 (e.g., initiating an emptying cyclone), upon manual actuation of an automatic emptying switch, or upon any other manner of instigating an emptying operation.
If more than one openable portion 146 is provided, each openable portion 146 of the air treatment assembly 120 may be operable to open an air treatment chamber 140, a dirt collection chamber 144, or both. That is, the openable portions 146 may open the same regions within the air treatment assembly 120 (see e.g.,
If more than one openable portion 146 is provided at the same end of the air treatment assembly 120, the openable portions 146 may be operable independently, concurrently, or both. For example, an end of the air treatment assembly 120 may have a first openable portion 1461 forming a first portion of the end, and a second openable portion 1462 forming a second portion of the end. In this way, each openable portion 146 may move independent of the other openable portion 146 and optionally concurrently with the other openable portion 146 (see e.g.,
In use, dirty air may be drawn into the hand vacuum 100 through the dirty air inlet 122. The dirty air inlet 122 may be provided at the front end 108 of the hand vacuum 100. The dirty air inlet 122 may further be positioned proximate the upper end 112 or the lower end 114. For example, in the embodiment illustrated in
Referring still to
As exemplified, the air inlet conduit 148 has a conduit sidewall 150. The conduit sidewall 150 surrounds and defines an airflow channel 152. The airflow channel 152 has a linear portion, which extends generally linearly rearwardly from the dirty air inlet 122 in the direction of a conduit axis 154. As shown, the conduit axis 154 may be generally parallel to the hand vacuum axis 116. Alternatively, the conduit axis 154 may be at an angle to the hand vacuum axis 116. Optionally, as exemplified in
As exemplified, the airflow channel 152 extends from the dirty air inlet 122 to at least one dirty air outlet 156 of the air inlet conduit 148. Each dirty air outlet 156 may be in fluid communication with the air treatment chamber 140. Any number of dirty air outlets 156 may be used, such as one (as shown; see also e.g.,
Referring to the embodiment illustrated in
As exemplified, the second airflow channel 1522 may be in fluid communication with the first airflow channel 1521 through a channel communication port 158. The channel communication port 158 may be provided in the conduit sidewall 150 between the first and second airflow channels 152. Accordingly, at least a portion of the first and second airflow channels 152 may overlap (e.g., be radially spaced from each other), and the channel communication port 158 may be provided at any location through the overlapping portion. Therefore, in operation as exemplified, the airflow path 126 may travel generally radially outwardly from the first airflow channel 1521 through the channel communication port 158 and into the second airflow channel 1522.
As exemplified, the second airflow channel 1522 extends from the channel communication port 158 to at least one dirty air outlet 156. Accordingly, the dirty air outlet 156 of the air inlet conduit 148 at the downstream end of the first airflow channel 1521 may be referred to as a primary dirty air outlet 1561. Each dirty air outlet 156 of the air inlet conduit 148 along the second airflow channel 1522 may thus be referred to as a secondary dirty air outlet 1562. Each secondary dirty air outlet 1562 may be in fluid communication with the air treatment chamber 140.
As exemplified, the second airflow channel 1522 may include a linear portion only, similar to as described with respect to the first airflow channel 1521 (see also e.g.,
Optionally, the primary dirty air outlet 1561, the channel communication port 158, and/or at least one of the secondary dirty air outlets 1562 (other than the downstream-most secondary dirty air outlet 1562) may have a porous filtration material 160. Any suitable material may be used, such as a mesh or a screen. Generally, the porous filtration material 160 may permit dirty air carrying fine dirt particles to pass through, while restricting the passage of coarse dirt particles. Those coarse dirt particles that may become stuck on the porous filtration material 160 may be stripped off of the porous filtration material 160 by the airflow travelling further downstream to a subsequent dirty air outlet 156.
For example, referring still to the embodiment illustrated in
If a single dirty air outlet 156 is provided at a downstream end of an airflow channel 152, it may be open (i.e., free of/have an absence of any porous filtration material 160). For example, in the illustrated embodiment, the single dirty air outlet 156 of each airflow channel 152 is open.
If a plurality of dirty air outlets 156 are provided along an airflow channel 152, at least the dirty air outlet 156 that is furthest downstream of all the dirty air outlets 156 may be open. This may prevent dirt particles from becoming trapped in the air inlet conduit 148. For example, referring briefly to the embodiment illustrated in
Optionally, as exemplified in
Optionally, the porous filtration material 160 may be used to provide gradated filtration of the dirty air flow. That is, the porous filtration material 160 of each dirty air outlet 156 may have a greater pore size than the porous filtration material 160 of the dirty air outlet 156 immediately upstream therefrom. In this way, dirt particles of successively greater size may be permitted to pass through a dirty air outlet 156 as the dirt particles travel further downstream in the air inlet conduit 148 to the downstream-most dirty air outlet 156. The gradated filtration may optionally begin with the porous filtration material 160 (if present) of the channel communication port 158.
Referring again to
If the air treatment chamber 140 is non-cyclonic, then the central axis 164 may alternatively be referred to as a longitudinal axis 164 of the air treatment chamber 140. If the air treatment chamber 140 is cyclonic, then the central axis 164 may alternatively be referred to as a cyclone axis of rotation 164 about which the airflow path 126 rotates within the air treatment chamber 140.
A cyclonic air treatment chamber 140 may be any type of cyclone chamber. For example, as shown in
When the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the air treatment chamber 140 may have an upper end, a lower end, a front end, a rear end, and laterally opposed ends. In a horizontal cyclone, the front end may be bound by the first end wall 1621, the rear end may be bound by the second end wall 1622, and the upper end, lower end, and laterally opposed ends may be bound by the treatment chamber sidewall 166 (see e.g.,
The air treatment chamber 140 may include at least one chamber air inlet 168. Each chamber air inlet 168 may be fluidly connected to a corresponding dirty air outlet 156 of the air inlet conduit 148. A dirty air outlet 156 and its associated air inlet 168 may be a single port in, e.g., the sidewall of a chamber and may be referred to as an inlet port. Dirty air may exit each dirty air outlet 156 of the air inlet conduit 148, pass through the inlet port, and enter the air treatment chamber 128 through the corresponding chamber air inlet 168.
Referring again to
If the air treatment chamber 140 has more than one tangential chamber air inlet 168, the tangential chamber air inlets 168 may be circumferentially spaced apart around the treatment chamber sidewall 166. Stated another way, the tangential chamber air inlets 168 may be angularly spaced apart around the central axis 164. The tangential chamber air inlets 168 may have any circumferential/angular spacing, which may correspond to the spacing of the dirty air outlets 156 of the air inlet conduit 148.
If the air treatment chamber 140 is cyclonic, providing more than one chamber air inlet 168 may advantageously enable the use of an axially smaller cyclone chamber and, therefore, may advantageously provide a more compact hand vacuum 100. In operation, dirty air flow entering the air treatment chamber 140 may maintain generally the same width as the inlet port of the chamber air inlet 168 (i.e., in the direction of the central axis 164) while following the cyclonic airflow path 126. Accordingly, the air treatment chamber 140 may have an axial length that is a multiple of the width of the inlet port of the chamber air inlet 168 (i.e., in the direction of the central axis 164) such that the airflow path 126 completes a minimum desired number of revolutions within the air treatment chamber 140 before reaching a chamber air outlet of the air treatment chamber 140. For example, the air treatment chamber 140 may have an axial length that is 2.5, 3, 3.5, 4 or more times the width of the inlet port of the chamber air inlet 168 such that the airflow path may complete 2.5, 3, 3.5, 4 or more revolutions within the air treatment chamber 140 before reaching a chamber air outlet of the air treatment chamber 128 or reversing direction towards the chamber air outlet.
The air treatment chamber 140 and chamber air inlet 168 may thus be sized to achieve a minimum desirable separation efficiency, which may be influenced at least by the number of revolutions of the airflow path 126 within the air treatment chamber 140. For example, at least 3 revolutions may achieve a minimum desirable separation efficiency. Accordingly, increasing the number of chamber air inlets 168 may enable the width of each inlet port to be shorter, while introducing dirty air into the air treatment chamber 140 at about the same air flow rate. This, in turn, may enable the axial length of the air treatment chamber 140 to be shorter while achieving the desired number of revolutions within the air treatment chamber 140 and thus meeting or exceeding the minimum desirable separation efficiency.
Treated air may exit the air treatment chamber 140 through one or more chamber air outlets 170. Each chamber air outlet 170 may comprise or consist of an outlet port through the first or second end wall 162. Optionally, if only one chamber air outlet 170 is used, the air treatment chamber 140 may be a cyclone with unidirectional airflow (i.e., a uniflow cyclone chamber wherein the inlet port of the chamber air inlet 168 and the outlet port of the chamber air outlet 170 are at opposite ends of the air treatment chamber 140; see e.g.,
Optionally, if more than one chamber air outlet 170 is used, the air treatment chamber 140 may be configured so that the inlet port of the chamber air inlet 168 is centered between the first and second end walls 162, and each of the first and second end walls 162 may have an outlet port of a chamber air outlet 170. In such embodiments, the air treatment chamber 140 may be referred to as a split-flow cyclone, wherein bidirectional airflow travels from one centrally located chamber air inlet 168 to opposed chamber air outlets 170 (see e.g.,
Referring again to
The porous outlet(s) 172 may have any shape. For example, a porous outlet 172 may be conical (see e.g.,
The porous outlet 172 may include a porous material, such as a screen or mesh, through which the airflow path 126 passes. The porous material may have a plurality of pores, and the pores may have any size suitable for permitting the passage of air therethrough while restricting the passage of particulate matter. The porous material may be self-supporting (e.g., rigid) and/or supported by a plurality of ribs extending along the screen.
Optionally, the porous outlet 172 may include solid portion facing each chamber air inlet 168 if the chamber air inlet 168 and the chamber air outlet 170 are positioned proximate the same end of the air treatment chamber 140. The solid portion is air impermeable thereby inhibiting the airflow path 126 from passing directly from the chamber air inlet(s) 168 through the porous outlet 172 to the outlet port of the chamber air outlet 170. This may also prevent the pores of the porous outlet 172 from becoming clogged by the dirty airflow directly impacting on the screen. Optionally, the air outlet conduit 174, if present, may form all or part of the solid portion.
The porous outlets 172 may optionally be removably connected (e.g., threadably, snap-fit, etc.) to the end wall 162 over the outlet port of the respective chamber air outlet 170. Similarly, the porous outlets 172 may optionally be removably connected to the distal end of the air outlet conduit 174, if present. The proximal end of the air outlet conduit 174 may be integrally formed with the end wall 162 over the outlet port of the respective chamber air outlet 170 or it may be the outlet port. Alternatively, the proximal end of the air outlet conduit 174 may optionally be removably connected to the end wall 162 over the outlet port of the respective chamber air outlet 170. In such embodiments, the porous outlet 172 may optionally be integrally formed with the distal end of the air outlet conduit 174. In any of the described embodiments, the porous outlet 172 may advantageously be removed from the respective end wall 162 for inspection, cleaning, and/or replacement. Further, porous outlets 172 of various shapes may advantageously be interchangeably connected to the end wall 162 to change the airflow dynamics and/or collection capacity of the dirt collection region 142 of the air treatment chamber 140.
At least some of the particulate matter separated from the dirty air flow by the porous outlet 172 and/or by momentum separation (e.g., thrown from the air flow by a cyclonic airflow path 126 or by a directional change in a non-cyclonic airflow path 126) may remain in the dirt collection region 142 of the air treatment chamber 140.
Alternatively, or in the addition, the air treatment chamber 140 may include one or more dirt outlets 176 in communication with an external dirt collection chamber 144. Any number of dirt outlets 176 may be used. Each dirt outlet 176 may be of any configuration known in the art. For example, each dirt outlet 176 may be a slot opening provided through the first end wall 1621 (see e.g.,
Each dirt outlet 176 may be spaced apart from the chamber air inlet(s) 168. For example, in embodiment illustrated in
The dirt outlet(s) 176 may face forwardly, rearwardly, upwardly and/or downwardly. The location and orientation of the dirt outlet(s) 176 may depend on the type of air treatment chamber 140 (i.e., horizontal, transverse, or vertical cyclone) and the position of the dirt collection chamber 144 relative to the air treatment chamber 140. For example, if the dirt collection chamber 144 is at least partially forward of the air treatment chamber 140, a forwardly facing dirt outlet 176 may be provided through the first end wall 1621 of a horizontal cyclone (see e.g.,
The dirt collection chamber 144 may surround all or part of the air treatment chamber 140 (i.e., all or part of the lower end, the rear end, the front end, and any combination thereof). Accordingly, it will be appreciated that the dirt outlet(s) 176 may be positioned at any location(s) within the portion of the air treatment chamber 140 that is surrounded by the dirt collection chamber 144.
When the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the dirt collection chamber 144 may have an upper end, a lower end, a front end, a rear end, and laterally opposed ends. One or more of the upper end, lower end, front end, rear end, and laterally opposed ends of the dirt collection chamber 144 may be bound by a collection chamber sidewall 178. At least one of the lower end, front end, and rear end of the dirt collection chamber 144 may be bound, at least in part, by a portion of the first end wall 1621, the second end wall 1622, and/or the treatment chamber sidewall 166 of the air treatment chamber 140.
Whether the dirt collection chamber 144 is bound in part by the first end wall 1621, the second end wall 1622, and/or the treatment chamber sidewall 166, may depend on the position of the dirt collection chamber 144 relative to the air treatment chamber 140. For example, if the dirt collection chamber 144 is forward of the air treatment chamber 140, at least part of the rear end of the dirt collection chamber 144 may be bound by the first end wall 1621 of a horizontal cyclone (see e.g.,
In some embodiments, at least a portion of the air treatment chamber 140 that partially bounds the dirt collection chamber 144 may be an optional moveable portion 180. Accordingly, the moveable portion 180 may be part of the treatment chamber sidewall 166 (see e.g.,
The moveable portion 180 may optionally be operatively (e.g., rigidly, drivingly, drivenly, etc.) connected to any openable portion 146 of the air treatment assembly 120. If the movable portion 180 is rigidly connected to an openable portion 146, when the openable portion 146 moves from the closed position to the emptying position, the moveable portion 180 may concurrently move from the closed position to the emptying position (see e.g.,
If the moveable portion 180 is operatively connected to an openable portion 146, the moveable portion 180 and corresponding openable portion 146 may share a common lock and actuator (e.g., only one of the moveable portion 180 and corresponding openable portion 146 may be secured in a closed position by a lock) such that the moveable and openable portions are concurrently operable. Alternatively, the moveable portion 180 may be moveable independent of any openable portion. In such embodiments, the moveable portion 180 may have an individual lock and actuator such that the moveable portion 180 and openable portion(s) 146 are operable independently from each other.
The hand vacuum 100 may include any suitable type of carry handle 136, e.g., as part of the main body 118. The handle 136 may be located at the rear end 110 of the hand vacuum 100. Additionally, or alternatively, the handle 136 may be located at the upper end 112 or lower end of the hand vacuum 100.
The handle 136 may have one or more hand grip portions. For example, the handle 136 may have an underhand grip portion 182 (see e.g.,
As another example, the handle 136 may have a pistol grip portion 186 (see e.g.,
It will be appreciated that the underhand grip portion 182, the pistol grip portion 186, or both, may be arcuate or may extend linearly. In either case, the grip axis 184, 188 may extend centrally through the respective grip portion from a first end of the grip portion (e.g., the forward end of the underhand grip portion 182; the upper end of pistol grip portion 186) to an opposed end of the grip portion (e.g., the rearward end of the underhand grip portion 182; the lower end of pistol grip portion 186).
If the handle 136 has both the underhand grip portion 182 and the pistol grip portion 186, the handle 136 may also be referred to as a multi-grip handle (see e.g.,
The lower end of the pistol grip portion 186 may optionally be connected to the main body housing 138. The lower end of the pistol grip portion 186 may be directly connected to the main body housing 138 (see e.g.,
The lower housing section 190 may function as a stand for the hand vacuum 100 and/or as housing for one or more operational components of the hand vacuum 100. The finger guard 192 may advantageously protect the user's fingers while gripping the pistol grip portion 186. The finger guard 192 may further advantageously function as housing for one or more operational components of the hand vacuum 100.
In some embodiments, a finger gap 194 for receiving the fingers of a user may be formed between the underhand grip portion 182 and/or the pistol grip portion 186 and the main body housing 138. That is, depending on the configuration of the main body housing 138 and the handle 136, the finger gap 194 may be bounded, at least in part, by three or more of the underhand grip portion 182, the pistol grip portion 186, the main body housing 138, the lower housing section 190, and finger guard 192 (see e.g.,
The suction motor 128 of the hand vacuum 100 may be of any suitable design and configuration that is sufficient to impart a desired air flow through the hand vacuum 100. For example, the suction motor 128 may include a fan and/or impeller which is driven by a motor (i.e., a motor and fan assembly) and which rotates about a motor axis of rotation 196 to help generate the desired air flow.
The suction motor 128 may be positioned in the main body 118 within a motor housing 198. The motor housing 198 may be integrally formed as part of the main body housing 138. Optionally, at least part of the motor housing 198 may extend rearwardly from the main body housing 138. Accordingly, in embodiments where the motor housing 198 is positioned proximate the upper end 112 of the hand vacuum 100, at least part of the motor housing 198 may form an upper rearwardly portion of the main body (see e.g.,
The suction motor 128 may have any orientation within the main body 118. For example, within the main body housing 138, when the hand vacuum 100 is oriented with the upper end 112 above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the motor axis 196 may be oriented generally horizontally (see e.g.,
The suction motor 128 may be at any position relative to the air treatment assembly 120. For example, the suction motor 128 may be at an elevation between the upper and lower end of the air treatment assembly 120, or at least partially above or below the air treatment assembly 120, and may be positioned fully rearward of the air treatment assembly 120 (see e.g.,
Optionally, the hand vacuum 100 may include one or more pre-motor filters 130. The pre-motor filter 130 may be positioned in the airflow path 126 at any location downstream of the air treatment assembly 120 and upstream of the suction motor 128.
The pre-motor filter 130 may be positioned in the main body 118 within a pre-motor filter housing 200 (see e.g.,
Alternatively, the pre-motor filter 130 may be positioned in the air treatment assembly 120. For example, the pre-motor filter 130 may be at least partially nested in the porous outlet 172 of the air treatment chamber 140 (see e.g.,
The pre-motor filter 130 may be formed from foam or any other suitable physical, porous filter media. For example, the pre-motor filter 130 may be formed from cloth or paper, such as a pleated filter media. Optionally, a felt filter layer can be provided on one side of the pre-motor filter 130, and preferably is positioned adjacent the downstream side but may be provided on the upstream side but may be provided on the upstream side.
The pre-motor filter 130 may have any suitable shape, such as cylindrical (see e.g.,
The pre-motor filter 130 may be removed from the hand vacuum 100 such as for cleaning, inspection, replacement, and the like. The pre-motor filter 130 may be removed by any suitable means such as, for example, through a sidewall of the hand vacuum 100. For example, when the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the pre-motor filter 130 (and optionally the pre-motor filter housing 200) may be withdrawn from the hand vacuum 100 through the main body housing 138 at the upper end 112 of the hand vacuum 100 (i.e., in the upward direction), at the lower end 114 (i.e., in the downward direction), at the rear end 110 (i.e., in the rearward direction), at the front end 108 (i.e., in the forward direction), or at a lateral side (i.e., in the lateral direction). Alternatively, the pre-motor filter 130 may be exposed within the hand vacuum 100 for removal, such as by moving (e.g., pivoting, translating) the air treatment assembly 120 relative to the main body 118, or removing the air treatment assembly 120 from the main body 118 (see e.g.,
Optionally, the hand vacuum 100 may include one or more post-motor filters 150. The post-motor filter 132 may be positioned in the airflow path 126 at any location downstream of the suction motor 128 and upstream of the clean air outlet 124.
The post-motor filter 150 may be positioned in the main body 118 within a post-motor filter housing 202 (see e.g.,
The post-motor filter 132 may be a physical foam media filter or may be any other suitable physical porous filter media, including, for example, a felt filter, a HEPA filter, a paper filter, other physical filter media, an electrostatic filter, and the like.
The post-motor filter 132 may have any suitable shape, such as cylindrical (see e.g.,
The post-motor filter 132 may be removed from the hand vacuum 100 such as for cleaning, inspection, replacement, and the like. The post-motor filter 132 may be removed by any suitable means, such as those described with respect to the pre-motor filter 130.
The clean air outlet 124 of the hand vacuum 100 may be provided as part of the main body 118. As shown in the embodiment illustrated in
The clean air outlet 124 may be at any position rearward of the dirty air inlet 122. For example, the clean air outlet 124 may be provided proximate the rear end 110 (see e.g.,
Alternatively, if the airflow path 126 passes through the handle 136, the clean air outlet 124 may be provided in a portion of the handle 136. For example, in such embodiments, the clean air outlet 124 may be provided in a portion of the handle other than the hand grip portion itself, a lower housing section 190 (see e.g.,
The hand vacuum 100 may further include a power supply to run the suction motor 128 and other electrical components of the hand vacuum 100. The power supply may be AC power supplied by an electrical cord (not shown) that may be plugged into a wall socket (household mains). Alternatively, or in addition to the electrical cord, the power supply of the hand vacuum 100 may include one or more onboard power sources, such as one or more energy stores 134. If both an electrical cord and one or more onboard power sources are present, the power cord may optionally be detachable from the hand vacuum 100.
Each energy store 134 may be of any suitable type, including, for example one or more batteries, such as solid-state batteries, and/or one or more capacitors, such as super capacitors or ultra capacitors which are capable of storing electricity and optionally are rechargeable. The energy stores may be provided in a housing 206 (e.g., a plurality of batteries in a battery pack or a plurality of capacitors in a power pack). If the energy store(s) 134 is/are a battery pack, each battery pack may include any suitable number of cells, and may include, for example, 3 cell 18560 lithium-ion batteries. If two battery packs are connected in series, they may create a 6 cell 22 V Li-ion power source. Any number of cells may be used to create a power source having a desired voltage and current, and any type of battery may be used, including NiMH, alkaline and the like.
Optionally, if the one or more energy stores 134 are batteries, the batteries may be rechargeable (e.g., via an electrical cord when plugged into a wall socket and the hand vacuum 100, or when docked to a docking station). Alternatively, the batteries may be replaceable, non-rechargeable batteries. Additionally, or alternatively, the one or more energy stores 134 (i.e., batteries or capacitors) may be removed alone or within their energy store housing 206 (see e.g.,
An energy store housing 206 may be positioned in, or integrally formed with, the main body housing 138. Additionally, or alternatively, an energy store housing 206 may be positioned in, or integrally formed with, part of the handle 136. Alternatively, an energy store housing 206 may be removably mounted to the main body housing 138 and/or the handle 136.
The energy store 134 used in the hand vacuum 100 may be provided at a single location. For example, the energy store 134 may be provided as one large pack containing a plurality of energy stores 134. In such embodiments, the energy stores 134 within the pack may be arranged in a single row (see e.g.,
The energy store 134 may be provided at any position within or on the main body housing 138. For example, the energy store 134 may be provided proximate the upper end 112 of the hand vacuum 100 (see e.g.,
The energy store housing 206 may be provided at any position within or on the handle 136. For example, the energy store 134 may be provided within the underhand grip portion 182, the pistol grip portion 186, the lower housing section 190 (see e.g.,
Any number of energy stores 134 may be provided in any one location or combination of two or more of locations described previously within the main body housing 138 and the handle 136. Any additional location(s) within the hand vacuum 100 other than those described may be possible.
Positioning energy stores 134 at two or more locations may advantageously help distribute the weight of the energy stores 134 and may affect the hand feel and/or perceived balance of the hand vacuum 100. Optionally, if the energy stores 134 are provided in multiple locations within the hand vacuum 100, the energy stores 134 may be positioned generally opposite each other on opposite sides of a central plane extending along the hand vacuum axis 116 of the hand vacuum 100. For example, one energy store 134 may be positioned toward the upper end 112 of the hand vacuum 100 and another energy store 134 may be positioned toward the lower end 114. Similarly, the energy stores 134 may be positioned toward opposed lateral sides of the hand vacuum 100, such as on lateral sides around the suction motor 128. In this way, the weight of one energy store 134 may at least partially offset/counterbalance the weight of the opposing energy store 134. This may help reduce the torque experienced by the user while manipulating the orientation of the hand vacuum 100 during use.
The energy store(s) 134 may have any orientation within the main body housing 138 and/or the handle 136. For example, when the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, a long dimension of the energy store(s) 134 may extend generally forwardly/rearwardly horizontally (see e.g.,
Additionally, or as an alternative to the energy stores 134 being onboard power sources, one or more energy stores 134 may optionally be provided within the wand 104, the surface cleaning head 106, and other accessories. The energy store(s) 134 in the wand 104 and/or the surface cleaning head 106 may provide some additional power when the hand vacuum 100 is connected to the wand 104 and/or to the surface cleaning head 106 via the wand 104. For example, the additional power from the energy store(s) 134 in the wand 104 and/or the surface cleaning head 106 may be used to help power one or more electrically powered components in the surface cleaning head 106 and/or wand 104, such as one or more of a motor and fan assembly (e.g., a dirty air motor), a brush motor, lights, a head up display projected from the surface cleaning head or other such features that require power in the surface cleaning head 106. Optionally, all of the energy stores 134 can provide at least some power to the suction motor 128 and, optionally, one or more electrically powered components in the surface cleaning head 106 and/or wand 104. This may help provide longer run times, higher suction levels or both as compared to only using the power supplied from the hand vacuum 100. The additional mass of the energy store(s) 134 in the wand 106 and/or the surface cleaning head 104 may also advantageously be left behind when a user detaches the hand vacuum 100 for above floor cleaning. Accordingly, a higher level of power (e.g. a higher air flow or level of suction) may be provided when operating in an above-floor cleaning mode and a floor cleaning mode.
As described previously, in addition to functioning as a nozzle, the air inlet conduit 148 can be directly connected to the downstream end of the wand 104 or any suitable accessory tool such as a crevice tool, a mini brush or the like. The air inlet conduit 148 may also be or indirectly connected to any such accessory tool via the wand 104. Optionally, the hand vacuum 100 can include an electrical connector 208 provided proximate the front end 108, such as adjacent the air inlet conduit 148 above the dirty air inlet (see e.g.,
In such embodiments, the downstream end of accessory tool or the wand 104 may include another electrical connector detachably matingly connectable to the electrical connector 208 of the hand vacuum 100. The electrical connectors 208 may be of any suitable configuration, such as mating male and female members (e.g., pins and sockets) as shown in the illustrated embodiments. Power can thereby be communicated directly between the hand vacuum 100 and the accessory tool or indirectly between the hand vacuum 100 and the accessory tool or the surface cleaning head 106 via the wand 104.
As exemplified in
Optionally, the hand vacuum 100 can be detachably connected to the upper end of the wand 104, for example using a latch as shown. Similarly, the lower end of the wand 104 can optionally be removably connected to the surface cleaning head 106, for example using another latch (not shown). Providing detachable connections at both ends of the wand 104 may enable use of the hand vacuum 100 in at least three modes of operation. That is, the hand vacuum 100 can be used (i) independently in a first above-floor cleaning mode using the air inlet conduit 148 to clean a surface (i.e., in the configuration shown in e.g.,
In the first and second above-floor cleaning modes, the hand vacuum 100 can be used for cleaning above-floor surfaces (e.g., furniture, countertops, etc.) and cleaning hard to reach areas (e.g., along baseboards, ceilings, stairs, etc.). Optionally, accessory tools such as crevice tools, mini brushes (e.g., manual or motorized), hoses, and the like can be removably connected to the air inlet conduit 148 or wand 104 to facilitate the above-floor cleaning modes. In the upright cleaning mode, the hand vacuum 100 can be used to clean a floor or other surfaces in a manner analogous to a conventional upright-style vacuum cleaner.
The hand vacuum 100 may include one or more user interfaces. Each user interface may be an information display, a control switch, a power switch, and the like. For example, each user interface may provide information display, function control, or both. If more than one user interface is provided, the user interfaces may be of the same or different types. For example, a first user interface may be an information display and a second user interface may be a control switch or a power switch.
Additionally, if more than one user interface is provided, the user interfaces may be interrelated or separate. For example, information displayed on a first user interface (i.e., an information display) may be controlled by a related second user interface (i.e., a control switch) and/or correspond to the function of the hand vacuum 100 controlled by the related second user interface (i.e., a control switch or a power switch). As another example, the first user interface may provide information display and/or function control for one or more functions of the hand vacuum 100 and the second user interface may provide information display and/or function control for one or more different functions of the hand vacuum 100.
Optionally, the user interface of the hand vacuum 100 may include one or more information displays 210 to provide information to a user. For example, the hand vacuum 100 may include one or more lights to indicate when the suction motor is on, its current power level (e.g., hi or low, if applicable), battery charge level, and the like. The information display 210, and associated electronics, may be used to display status information. Optionally, the information display may be connectable to other apparatuses. For example, if the hand vacuum 100 is connected to a different apparatus, such as an accessory tool, the wand 104, and/or the surface cleaning head 106, the information displayed may be customized for each type of apparatus connected to the hand vacuum 100. That is, the information display 210 may optionally be communicatively connected to whatever apparatus is connected to the hand vacuum 100 (e.g., via the electrical connector 208) such that it may detect the type of apparatus connected. The information displays 210 may include one or more display screens, such as an LCD display, LED screen, OLED screen, and the like. The display screen may be configured to show information about whatever apparatus is connected to the hand vacuum 100 (e.g., brush motor of a surface cleaning head on or off), so that the same screen can be used for multiple apparatuses. This may reduce the need to provide screens or other information displays on each separate apparatus that can be connected to the hand vacuum 100.
The information display 210 may be provided on the hand vacuum 100 at any location suitable for allowing the user to monitor the status information displayed on the information display 210. For example, the information display 210 may be provided at the rear end 110 of the hand vacuum 100, such as on the main body housing 138 at the upper end 112 (see e.g.,
Optionally, the user interface of the hand vacuum 100 may include one or more control/power switches 212 (referred to generally herein as power switches). The power switches 212 may control any function of the hand vacuum 100, such as operation of the suction motor 128 (e.g., on/off, variable power levels, or both). For example, a power switch 212 may be operable to establish a power connection between the energy stores 134 and the suction motor 128. Similarly, the same power switch 212 or a different one may optionally be operable to establish a power connection between the energy stores 134 and lights or a brush motor of the hand vacuum 100.
Optionally, a power switch 212 may also be configured to control other powered accessories connectable to the hand vacuum 100. For example, the power switch 212 may be operable to control both the suction motor 128 of the hand vacuum 100 and the brush motor and/or lights of the surface cleaning head 106 and/or any other electrified component provided on the wand 104, surface cleaning head 106, or any other tool or attachment. Alternatively, the power switch 212 may be operable to control some functions of the hand vacuum 100 only, and one or more additional power switches 212 may be operable to control the different functions of the powered accessories connectable to the hand vacuum 100.
The one or more power switches 212 can be provided in any suitable configuration. For example, the power switch 212 may be a push button (see e.g.,
The one or more power switches 212 can be provided on the hand vacuum 100 at any suitable location(s), which may be the same or different locations. The power switch 212 may be provided on or near the handle 136 such that it can be actuated by a finger (e.g., thumb or index finger) of the user on the same hand as is holding the handle 136. For example, the power switch 212 may be provided on the underhand grip portion 182 (see e.g.,
Alternatively, or in addition to being provided on the handle 136, the power switch 212 may be provided on the main body 118 at a location generally proximate to the handle 136 so that the switch 212 can be operated using the same hand that is holding the handle 136 or, alternatively, by the other hand of the user. For example, the power switch 212 may be provided on the main body housing 138 at the upper end 112 of the hand vacuum 100 (see e.g.,
Optionally, if more than one user interface is provided (i.e., two or more information displays 210, two or more power switches 212, or one or more information displays 210 and one or more power switches 212), the user interfaces may be provided at any combination of locations described herein.
Optionally, the hand vacuum cleaner 100 may be configurable in two or more different operating modes having different power profiles. For example, the suction motor 128 in the hand vacuum 100 may be operable at a low power mode and a high-power mode, each providing different levels of suction and air flow through the hand vacuum 100. In some embodiments, switching between such power modes may be done manually by a user using the power switch 212. In other embodiments, switching between such power modes may be done automatically based on the configuration or operation of the hand vacuum (e.g., attaching the hand vacuum cleaner to a wand and/or a wand and a surface cleaning head). In other embodiments, the hand vacuum 100 may automatically change power modes, but may also include a manual option for a user to override the automatic changes.
Referring to
When docked to the docking station 214, the hand vacuum axis 116 of the hand vacuum 100 may have any orientation. For example, the hand vacuum axis 116 may be generally vertically oriented, generally horizontally oriented, or at any other orientation. This may depend, for example, on the location of the openable portion 146 of the air treatment assembly 120. Similarly, if more than one openable portion 146 is present, this may depend on the location of the openable portion 146 for use with the docking station 214. The orientation of the hand vacuum axis 116 when the hand vacuum 100 is docked to the docking station 214 may also depend on the orientation of a docking station air inlet 222, within which the openable portion 146 is receivable, at the upper end 220 of the station conduit 218.
For example, if the openable portion 146 is a front openable portion as described previously herein and the station air inlet 222 is an opening that extends generally horizontally, the hand vacuum axis 116 may be generally vertically oriented when docked to the docking station 214 (see e.g.,
Optionally, the openable portion 146 for use with the docking station 214 may be an automatic openable portion as described previously herein. Once docked, the automatic openable portion 146 may be unlocked and may automatically move from the closed position to the emptying position, placing the dirt collection chamber 144 and/or, optionally, the air treatment chamber 140, in fluid communication the docking station 214 through the opening provided by the automatic openable portion 146. Alternatively, the automatic openable portion 146 may be moved to the emptying position by air flow through the docking station 214 or when an emptying cycle is initiated. As shown, when moving from the closed position to the emptying position, the openable portion 146 may move through the station air inlet 222 at the upper end 220 of the station conduit 218 into an interior thereof.
Subsequently, a suction motor may generate suction along a station airflow path 224 to draw the contents of the dirt collection chamber 144 and/or the air treatment chamber 140 through the opening of the openable portion 146 and into the station conduit 218. Optionally, a station suction motor in the station base 216 may be used. The station suction motor may generate the suction to draw the contents of the dirt collection chamber 144 and/or the air treatment chamber 140 through the opening of the openable portion 146 and into the docking station 214 through the station air inlet 222. Treated air may ultimately exhaust out a station air outlet to the ambient.
Alternatively, as exemplified in
A hand vacuum 100 configured for use with a docking station 214 having a return air conduit 226 may have a return air valve 234. Specific examples of the return air valve are described in greater detail subsequently herein. The return air valve 234 may be provided in the main body housing 138 (see e.g.,
The return air valve 234 may automatically move between the closed and open positions when the hand vacuum 100 is docked to the docking station 214. Any suitable means may be used. For example, the return air valve 234 may be electromechanically actuated (e.g., by an independent motor such as a stepper motor), which may automatically move return air valve 234 to the open position when the hand vacuum 100 is docked to the docking station 214 and return the return air valve 234 to the closed position when the hand vacuum 100 is removed. The return air valve 234 may alternatively be mechanically actuated. For example, as shown in the illustrated examples, as the hand vacuum 100 is docked to the docking station 214, the return air conduit 226 may engage the return air valve 234 and push the return air valve 234 from the closed position to the open position. This may place the station air outlet 232 in fluid communication with the interior of the hand vacuum 100. In such embodiments, the return air valve 234 may be biased to the closed position such that, when the hand vacuum 100 is removed from the docking station 214 and the return air conduit 226 is disengaged from the return air valve 234, the bias may automatically return the return air valve 234 to the closed position. Alternately, removing (undocking) the hand vacuum cleaner may engage the return air valve 234 and move the return air valve 234 from the open position to the closed position. Alternately, the valve may be manually moved or moved when an emptying cycle is initiated.
The docking station 214 may include one or more station debris separator(s) 238 through which the station airflow path 224 may pass to the station suction motor, if present, or to the return air passage 228 on route to the suction motor 128 of the hand vacuum 100. The station debris separator 238 may be provided in the station conduit 218 or, alternatively, the station base 216.
The station debris separator 238 may be any separator which is operable to separate particulate matter from the station airflow path 224. For example, the station debris separator 238 may be any cyclonic air treatment chamber (e.g., a transverse or vertical cyclone chamber) similar to any cyclone described herein with respect to the hand vacuum 100. Alternatively, the station debris separator 238 may be non-cyclonic, such as a filter bag, a porous physical filter material (such as a screen, foam, or felt), or other dirt separator, such as a non-cyclonic momentum separator disclosed herein. For example, the station debris separator 238 in the illustrated embodiments is a porous physical filter material (shown as a screen) provided in the port extending between the return air conduit 226 and the station base 216. In this way, the station base 216 and the return air passage 228 may be placed in fluid communication through the station debris separator 238.
Accordingly, particulate matter may be separated from the airflow by non-cyclonic momentum separation. That is, within the station base 216, the station airflow path 224 includes a significant directional change (e.g., of more than 45°, such as about 90°) from travelling generally inwardly (e.g., downwardly) through the station conduit 218 into the station base 216 to travelling, e.g., generally horizontally through the station debris separator 238. During this directional change, dirt particles with higher momentum than the air may be separated (e.g., thrown) e.g., downwardly from the airflow toward a lower end of the docking station 214. Additional particulate matter (e.g., fine particulate matter not separated by momentum) may be separated from the airflow as the station airflow path 224 proceeds through the station debris separator 238 or a downstream station debris separator.
Optionally, the docking station 214 may include a dirt collection cup or bag (see e.g.,
The foregoing general description is intended to provide a basis for understanding several of the features that are discussed herein. It will be appreciated that any embodiment, such as the example embodiments described herein, may use any one or more of the features as described in the general description. Similarly, any embodiment may use any one or more of those features as described in greater detail in the following detailed discussion of particular configurations.
Energy Store Housing Axially Aligned With Suction MotorA hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have an energy store housing that is axially aligned with the suction motor, e.g., in the direction of the hand vacuum axis 116. Optionally, in accordance with this aspect, at least one energy store in the energy store housing may be axially aligned with the suction motor. Optionally, in accordance with this aspect, at least one of the energy store housing and the suction motor may be positioned at least partially under the air treatment chamber and/or an exterior dirt collection chamber. This may advantageously provide a more compact hand vacuum.
An energy store 134 may be axially aligned with the suction motor 128 such that an alignment axis 240 that extends parallel to the hand vacuum axis 116 intersects both the energy store 134 and the suction motor 128. If more than one energy store 134 is provided in the energy store housing 206, such as in one large battery pack, the alignment axis 240 may intersect the energy store housing 206 or, more particularly, one or more energy stores 134 within the energy store housing 206.
In some embodiments, such as those described in this section, the alignment axis 240 may be coaxial with the motor axis 196 of the suction motor 128. In such embodiments, at least one energy store 134 may be axially aligned with the suction motor 128 such that the alignment axis 240 intersects the energy store housing 206 (see e.g.,
The energy store 134 and the suction motor 128 may be positioned at the lower end of the hand vacuum 100. The energy store 134 and the suction motor 128 may be positioned an elevation below the lower end of the air treatment chamber 140 and/or the handle and/or an external dirt collection chamber 144. Accordingly, in such embodiments, the alignment axis 240 may pass below the lower end of the air treatment chamber 140. In embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144 at least a portion of which is below the air treatment chamber 140, the alignment axis 240 may pass below the air treatment chamber 140 and through the dirt collection chamber 144. Additionally, the alignment axis 240 may further extend through the front openable portion 146, if present.
For example, in the embodiments illustrated in
In embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144 which is at least partially below the air treatment chamber 140, the rear end of the dirt collection chamber 144 may be at the forward end of the suction motor 128 or the energy store housing 206 (and the energy store(s) 134 therein). The rear end of the dirt collection chamber 144 may be facing the forward end of the suction motor 128 or the energy store housing 206 without any other operating component therebetween (e.g., adjacent to the forward end of the suction motor 128 or the energy store housing 206) or another operating component (e.g., a pre-moto filter) may be positioned between the rear end of the dirt collection chamber 144 and the forward end of the suction motor 128 or the energy store housing 206.
Alternately, or in addition, the suction motor 128 and/or the energy store housing 206 may be at least partially nested in the dirt collection chamber 144 and/or the air treatment chamber 140. In such embodiments, the dirt collection chamber 144 or the air treatment chamber 140 may be positioned on two or more sides of the nested suction motor 128 and/or the energy store housing 206. That is, depending on the location at which the suction motor 128 and/or energy store housing 206 extend into the dirt collection chamber 144, the dirt collection chamber 144 may be positioned around two or more of the forward end, a lateral side, an opposed lateral side, an upper side, and a lower side of the suction motor 128 and/or energy store housing 206.
For example, in the embodiments illustrated in
Optionally, the energy store housing 206 and the suction motor 128 may be positioned an elevation below the lower end of the handle 136. If the energy store housing 206 and the suction motor 128 are positioned an elevation below the lower end of the handle 136, the alignment axis 240 may also pass below the lower end of the handle 136. Optionally, in such embodiments, the energy store housing 206 (and at least one energy store 134 therein) and/or the suction motor 128 may be positioned at least partially under (underlying) the lower end of the handle 136.
For example, in the embodiments illustrated in
Additionally, in embodiments in which the hand vacuum 100 includes a return air inlet 236 which is connectable in air flow communication with the station air outlet 232 of a docking station 214, the alignment axis 240 may also extend through a return air path within the hand vacuum 100 from the return air inlet 236 to the suction motor 128. For example, in the embodiments illustrated in
In any embodiment wherein the suction motor 128 is axially aligned with the energy store housing 206, either component may be in front of the other. For example, in some embodiments, the suction motor 128 may be forward of the energy store housing 206. In such embodiments, the suction motor 128 may be positioned at any location previously discussed, such as at least partially, optionally fully, under the air treatment chamber 140. In embodiments wherein the suction motor 128 is positioned fully under the air treatment chamber 140, the energy store housing 206 may optionally be positioned at any location previously discussed, such as at least partially, optionally fully, under the air treatment chamber 140. In this way, at least one energy store 134 housed within the energy store housing 206 may optionally be positioned at least partially under the air treatment chamber 140.
Similarly, in some embodiments, the energy store housing 206 may be forward of the suction motor 128. In such embodiments, the energy store housing 206 may optionally be positioned at any location previously discussed, such as at least partially, optionally fully, under the air treatment chamber 140. In this way, at least one energy store 134 housed within the energy store housing 206 may be positioned at least partially under the air treatment chamber 140. In embodiments wherein the energy store housing 206 is positioned fully under the air treatment chamber 140, the suction motor 128 may optionally be positioned at any location previously discussed, such as at least partially, optionally fully, under the air treatment chamber 140.
Alternatively, in some embodiments, both the energy store housing 206 and the suction motor 128 may be rearward of the air treatment chamber 140, regardless of which of the energy store housing 206 and the suction motor 128 is forward of the other.
For example, if the suction motor 128 is forward of the energy store housing 206, the suction motor 128 may be positioned partially under the air treatment chamber 140 and the energy store housing 206 may be rearward of the air treatment chamber 140 (see e.g.,
Similarly, as another example, if the energy store 134 is forward of the suction motor 128, the energy store housing 206 may be positioned partially under the air treatment chamber 140 and the suction motor 128 may be rearward of the air treatment chamber 140 (see e.g.,
Alternatively, as another example, regardless of whether the energy store housing 206 is forward of the suction motor 128 (see e.g.,
In some embodiments, the airflow path 126 may travel forwardly from the pre-motor filter 130 to the suction motor 128. In such embodiments, the suction motor 128 may be positioned forward of the pre-motor filter 130 or, optionally, at least partially under the pre-motor filter 130. The energy store housing 206 may be positioned forward or rearward of the pre-motor filter 130 or, optionally, at least partially, optionally fully, under the pre-motor filter 130. If the energy store housing 206 is partially under the pre-motor filter 130, at least one energy store 134 housed within the energy store housing 206 may be positioned at least partially under the pre-motor filter 130.
For example, in the embodiments illustrated in
In the illustrated embodiments, the alignment axis 240 is shown as coaxial with the motor axis 196 wherever possible for clarity of illustration. It will be appreciated that the alignment axis 240 and the motor axis 196 need not be coaxial and, with reference to a hand vacuum cleaner in the orientation of, e.g.,
It will also be appreciated that the position of the alignment axis 240 as shown in the figures and described herein may be representative of the alignment of the energy store housing 206 (and one or more energy stores 134 therein) and the suction motor 128 with some components, and an alternate position of the alignment axis 240 may be representative of the alignment of the energy store housing 206 (and one or more same or different energy stores 134 therein) and the suction motor 128 with one or more different or additional components.
Energy Store Housing Vertically Aligned With Suction MotorA hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have an energy store housing that is vertically aligned with the suction motor. Optionally, in accordance with this aspect, at least one energy store in the energy store housing may be vertically aligned with the suction motor. Optionally, in accordance with this aspect, at least one of the energy store housing and the suction motor may be positioned at least partially under the handle. This may advantageously provide a more compact hand vacuum.
An energy store housing 206 may be vertically aligned with the suction motor 128 such that an alignment plane 242 that is transverse to the hand vacuum axis 116 intersects both the energy store housing 206 and the suction motor 128. The alignment plane 242 may intersect the energy store housing 206 (i.e., the energy store generally) or, more particularly, one or more energy stores 134 within the energy store housing 206.
For example, in the orientation of the hand vacuum cleaner of
The vertically aligned suction motor 128 and energy store housing 206 may be positioned adjacent (i.e., vertically or laterally) to each other at the upper end 112 or the lower end 114 of the hand vacuum 100. For example, the suction motor 128 and energy store housing 206 may be positioned adjacent to each other at the upper end 112 of the hand vacuum 100 above (overlying) the handle 136 and/or forward of the handle 136. Conversely, the suction motor 128 and energy store housing 206 may be positioned adjacent to each other at the lower end 114 of the hand vacuum 100 below (underlying) the handle 136 and/or forward of the handle 136.
For example, the suction motor 128 and the energy store housing 206 may be positioned adjacent to each other below the lower end of a pistol grip handle 136 (see e.g.,
Alternatively, the vertically aligned suction motor 128 and energy store housing 206 may be spaced apart (i.e., vertically or laterally) from one another. For example, the suction motor 128 may be positioned at the upper end 112 of the hand vacuum 100 above (overlying) the handle 136 and/or forward of the handle 136, or at the lower end 114 of the hand vacuum 100 below (underlying) the handle 136 and/or forward of the handle 136. In such embodiments, the energy store housing 206 may be vertically spaced from the suction motor 128, such as positioned at the opposed ends of the handle 136 or at the opposed ends of the hand vacuum 100 forward of the handle 136. Conversely, the energy store housing 206 may be positioned at the upper end 112 of the hand vacuum 100 above (overlying) the handle 136 and/or forward of the handle 136, or at the lower end 114 of the hand vacuum 100 below (underlying) the handle 136 and/or forward of the handle 136. In such embodiments, the suction motor 128 may be vertically spaced from the energy store housing 206, such as positioned at the opposed ends of the handle 136 or at the opposed ends of the hand vacuum 100 forward of the handle 136.
For example, in the embodiments illustrated in
Additionally, in some embodiments, the suction motor 128 may be positioned at least partially below one or more of the air treatment chamber 140, the pre-motor filter 130, and the handle 136. Alternatively, the energy store housing 206 may be positioned at least partially below one or more of the air treatment chamber 140, the pre-motor filter 130, and the handle 136. This may depend, for example, on the amount of overlap between the suction motor 128 and the energy store housing 206 in the direction of the hand vacuum axis 116. Such configurations may further compact the length of the hand vacuum 100 in the direction of the hand vacuum axis 116.
For example, in the embodiments illustrated in
In embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144, an alignment axis 240 that is parallel to the hand vacuum axis 116 may pass through the dirt collection chamber 144 and through one of the suction motor 128 and the energy store housing 206. If the alignment axis 240 extends through the energy store housing 206, it may also extend through one or more energy stores 134 therein. The alignment axis 240 may also pass through the air treatment chamber 140 if the dirt collection chamber 144 is at least partially forward of the air treatment chamber 140. Alternatively, the alignment axis 240 may also pass below the air treatment chamber 140 if the dirt collection chamber 144 is at least partially below the air treatment chamber 140. Additionally, the alignment axis 240 may further extend through the front openable portion 146, if present.
For example, in the embodiments illustrated in
In embodiments in which the hand vacuum 100 includes a return air inlet 236 which is connectable in air flow communication with the station air outlet 232 of a docking station 214, the alignment axis 240 may also extend through a return air path within the hand vacuum 100 from the return air inlet 236 to the suction motor 128. For example, as shown in
In the illustrated embodiments, the alignment axis 240 is shown as coaxial with the motor axis 196 or hand vacuum axis 116 wherever possible for clarity of illustration. It will be appreciated that the alignment axis 240 may be at any other position between the upper and lower ends 112, 114 of the hand vacuum 100 that is different from the motor axis 196 and hand vacuum axis 116 that is representative of the axial alignment of the various components described in this section (see e.g.,
It will also be appreciated that the position of the alignment axis 240 as shown in the figures and described herein may be representative of the alignment of the suction motor 128 or the energy store housing 206 (and one or more energy stores 134 therein) with some components, and an alternate position of the alignment axis 240 may be representative of the alignment of the suction motor 128 or the energy store housing 206 (and one or more same or different energy stores 134 therein) with one or more different or additional components. Similarly, the alignment plane 242 may be at any other position between the forward and rearward ends of the suction motor 128 and energy store 134 that is representative of the vertical alignment of thereof.
Pre-Motor Filter Under Air Treatment ChamberA hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have a pre-motor filter positioned at least partially under the air treatment chamber.
When the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the pre-motor filter 130 may be positioned at least partially, optionally fully, under the air treatment chamber 140. Accordingly, when the hand vacuum 100 is oriented in this way, the airflow path 126 may travel generally downwardly from the chamber air outlet 170 to the pre-motor filter 130.
For example, in the embodiments illustrated in
In embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144 which is at least a partially below the air treatment chamber 140, the pre-motor filter 130 may be at least partially, optionally fully, nested in the dirt collection chamber 144. In such embodiments, the dirt collection chamber 144 may be positioned on two or more sides of the nested pre-motor filter 130. That is, depending on the location at which the pre-motor filter 130 extends into the dirt collection chamber 144, the dirt collection chamber 144 may be positioned around two or more of the forward end, a lateral side, an opposed lateral side, an upper side, and a lower side of the pre-motor filter 130. In other embodiments, the pre-motor filter 130 may be below the full air treatment assembly 120, such as embodiments without an external dirt collection chamber 144 or wherein the external dirt collection chamber 144 does not have a portion below the air treatment chamber 140.
For example, in the embodiments illustrated in
When the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the suction motor 128 may be positioned at the lower end 114 of the hand vacuum 100. In such embodiments, the suction motor 128 may be positioned forward of the pre-motor filter 130 or rearward of the pre-motor filter 130. In such embodiments, the suction motor 128 may be positioned such that an alignment axis 240 that is parallel to the hand vacuum axis 116 and that extends through the pre-motor filter 130 also extends through the suction motor 128.
For example, in the embodiment illustrated in
In the illustrated embodiments, the alignment axis 240 is shown as coaxial with the motor axis 196 wherever possible for clarity of illustration. It will be appreciated that the alignment axis 240 may be at any other position between the upper and lower ends of the suction motor 128 that is different from the motor axis 196 that is representative of the axial alignment of the suction motor 128 and pre-motor filter 130 (see e.g.,
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have an energy store housing that is at least partially under the handle and is axially aligned with the front openable portion. In accordance with this aspect, at least one energy store within the energy store housing may be at least partially under the handle.
The energy store housing 206 may be positioned at the lower end of the hand vacuum 100 at any location rearward of the air treatment assembly 120. For example, the energy store housing 206 may be positioned at least partially in the lower rearwardly extending portion of the main body housing 138 (which could be referred to as a bridge portion). In such embodiments, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may be positioned under the lower end of a pistol grip handle 136, under an underhand grip portion 182 of a multi-grip handle 136, or under an underhand grip handle 136. In embodiments where the energy store housing 206 is positioned under an underhand grip portion 182 of a multi-grip handle 136 or under an underhand grip handle 136, the lower rearwardly extending portion of the main body housing 138 may be spaced from the underhand grip portion 182 to provide a sufficient finger gap 194 for receiving a user's fingers therebetween.
For example, in the embodiments illustrated in
When the energy store housing 206 is positioned at the lower end of the hand vacuum 100, an alignment axis 240 that is parallel to the hand vacuum axis 116 and that extends through the energy store housing 206 may also extend through the front openable portion 146 of the air treatment assembly 120. The alignment axis 240 may further extend through one or more energy stores 134 within the energy store housing 206. In some embodiments as described previously herein, the front end of the air treatment assembly 120 may have a first openable portion 1461 forming an upper portion of the front end and a second openable portion 1462 forming a lower portion of the front end. In such embodiments, the alignment axis 240 may extend through one of the first and second openable portions 146 when in the closed position. The alignment axis 240 may also extend through the opening of the one of the first and second openable portions 146 wherein the emptying position. Alternatively, in some embodiments as described previously herein, the front end of the air treatment assembly 120 may have a first openable portion 1461 forming a portion of the front end, and a second openable portion 1462 forming a portion of the first openable portion 1461. In such embodiments, the alignment axis 240 may extend through the first openable portion 1461 (i.e., above/below the second openable portion 1462) or the first and second openable portions 146 (i.e., through the second openable portion 1462 within the first openable portion 1461) when in the closed position. The alignment axis 240 may also extend through the opening of the first openable portion 1461 when in the emptying position or the through the opening of the first and/or second openable portions 146, depending on which openable portion is in the emptying position.
For example, in the embodiments illustrated in
As another example, in the embodiments shown in
As another example, in the embodiment shown in
In addition to the forgoing positioning of the housing 206 with respect to other components of the hand vacuum cleaner, in embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144 which is at least partially below the air treatment chamber 140, the alignment axis 240 may also pass through the dirt collection chamber 144 under the air treatment chamber 140. Similarly, in addition to the forgoing positioning of the housing 206 with respect to other components of the hand vacuum cleaner, in other embodiments, the alignment axis 240 may also pass through the air treatment chamber 140 if the dirt collection chamber 144 is at least partially forward of the air treatment chamber 140 or if the air treatment assembly 120 does not include an external dirt collection chamber 144.
For example, in the embodiments illustrated in
In the illustrated embodiments, the alignment axis 240 is shown as coaxial with the motor axis 196 or hand vacuum axis 116 wherever possible for clarity of illustration. It will be appreciated that the alignment axis 240 may be at any other position between the upper and lower ends of the energy store housing 206, which does not align with the motor axis 196 and hand vacuum axis 116, which is representative of the axial alignment of the energy store housing 206 and the various components discussed in this section (see e.g.,
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have a dirt collection chamber that is exterior to the air treatment chamber and a front openable portion that opens the dirt collection chamber.
The front end of the air treatment assembly 120 includes a front wall. In some embodiments, in which the air treatment assembly 120 includes a dirt collection chamber 144 that is forward of the air treatment chamber 140 or a portion of which is forward of the air treatment chamber 140, the front wall may be the collection chamber sidewall 178 at the front end of the dirt collection chamber 144. In some embodiments, in which the air treatment assembly 120 includes a dirt collection chamber 144 that is below the air treatment chamber 140, the front wall may be the collection chamber sidewall 178 at the front end of the dirt collection chamber 144. In some embodiments, in which the air treatment assembly 120 includes a dirt collection chamber 144 that is below the air treatment chamber 140, the front wall may also be an end wall 162 or front portion of the sidewall 166 of the air treatment chamber 140.
For example, in the embodiments illustrated in
As another example, in the embodiment illustrated in
At least a portion of the front wall of the air treatment assembly 120 may be moveable to open the dirt collection chamber 144 and/or the air treatment chamber 140 for emptying. The moveable portion of the front wall may also be referred to as the front openable portion 146 or a front openable door. As described previously herein, the front wall of the air treatment assembly 120 may include one front openable portion 146 forming a portion of the front wall, a first front openable portion (door) 1461 and a second front openable portion (door) 1462 each forming a different portion of the front wall, or a first front openable portion 1461 forming a portion of the front wall and a second front openable portion 1462 forming a portion of the first front openable portion 1461. It will be appreciated that the front openable portion 1461, 1462 may consist only of part or all of the wall.
In embodiments having a single front openable portion 146, the front openable portion 146 may optionally form the full front wall of the air treatment assembly 120. Similarly, in embodiments having a first front openable portion 1461 a second front openable portion 1462 forming a portion of the first front openable portion 1461, the first front openable portion 1461 may optionally form the full front wall of the air treatment assembly 120. In embodiments having first and second openable portions 146 each forming a portion of the front wall, the first and second openable portions 146 may optionally together form the full front wall of the air treatment assembly 120.
Alternatively, at least a portion of the front wall of the air treatment assembly 120 may be a stationary portion 244 that remains in position when each front openable portion 146 moves between the closed and emptying positions. Accordingly, in embodiments having a single front openable portion 146, a first front openable portion 1461 and a second front openable portion 1462 forming a portion of the first front openable portion 1461, or first and second openable portions 146 each forming a portion of the front wall, the openable portion(s) 146 may form only part of the front wall of the air treatment assembly 120 and the stationary portion 244 may form a remainder of the front wall.
For example, in the embodiments illustrated in
As another example, in the embodiments illustrated in
As yet another example, in the embodiments illustrated in
If the air treatment assembly 120 includes a single front openable portion 146, the front openable portion 146 may be operable to open the air treatment chamber 140, the dirt collection chamber 144, or both. That is, if the front wall of the air treatment assembly 120 forms the dirt chamber sidewall 178 at the front end of the dirt collection chamber 144, the front openable portion 146 may be operable to open the dirt collection chamber 144. Similarly, if the front wall of the air treatment assembly 120 forms the end wall 162 or treatment chamber sidewall 166 at the front end of the air treatment chamber 140, the front openable portion 146 may be operable to open the air treatment chamber 140. Alternatively, if the front wall of the air treatment assembly 120 does not form the end wall 162 or treatment chamber sidewall 166 at the front end of the air treatment chamber 140, the front openable portion 146 may nonetheless be operable to open the air treatment chamber 140 via the moveable portion 180 of the air treatment chamber 140. As described previously herein, the moveable portion 180 may be operatively (e.g., rigidly, drivingly, drivenly, etc.) connected to the front openable portion 146 of the air treatment assembly 120 such that, when the front openable portion 146 moves from the closed position to the emptying position, the moveable portion 180 may concurrently move (e.g., physically drawn or mechanically driven) from the closed position to the emptying position.
If the air treatment assembly 120 includes first and second front openable portions 146, the first front openable portion 1461 may be operable to open the air treatment chamber 140, the dirt collection chamber 144, or both, and the second front openable portion 1462 may be operable to open the air treatment chamber 140, the dirt collection chamber 144, or both. As described previously herein, the first and second front openable portions 146 may be operable to open the same chamber(s) 140, 144 of the air treatment assembly 120, different chamber(s) 140, 144 of the air treatment assembly 120, or at least one common chamber 140, 144 of the air treatment assembly 120. That is, if the front wall of the air treatment assembly 120 forms the dirt chamber sidewall 178 at the front end of the dirt collection chamber 144, at least one front openable portion 146 may be operable to open the dirt collection chamber 144. Similarly, if the front wall of the air treatment assembly 120 forms the end wall 162 or treatment chamber sidewall 166 at the front end of the air treatment chamber 140, at least one front openable portion 146 may be operable to open the air treatment chamber 140. Alternatively, if the front wall of the air treatment assembly 120 does not form the end wall 162 or treatment chamber sidewall 166 at the front end of the air treatment chamber 140, one of the front openable portions 146 may nonetheless be operable to open the air treatment chamber 140 via the moveable portion 180 of the air treatment chamber 140. In this way, when the one of the front openable portions 146 moves from the closed position to the emptying position, the moveable portion 180 may concurrently move (e.g., be physically drawn or mechanically or electrically driven) from the closed position to the emptying position.
For example, in the embodiments illustrated in
As another example, in the embodiments illustrated in
As another example, in the embodiments illustrated in
In some embodiments, in which one openable portion 146 opens the dirt collection chamber 144 only, that openable portion 146 may be below air treatment chamber 140. That is, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the inlet conduit 148 extending generally horizontally, the front openable portion 146 may extend downwardly from a location at or below the lower end of the air treatment chamber 140. In this way, the openable portion 146 that is below air treatment chamber 140 may open only the dirt collection chamber 144, or the portion thereof, that is below air treatment chamber 140.
For example, in the embodiments illustrated in
Similar to as described previously herein, an alignment axis 240 that is parallel to the hand vacuum axis 116 and that extends through the opening which is closed by at least the second front openable portion 1462 may also extend through at least one of the suction motor 128 and the energy store housing 206 (and one or more energy stores 134 therein). In some embodiments, the alignment axis 240 may extend through the opening which is closed by the second front openable portion 1462 and not of the first front openable portion 1461. In some embodiments, the alignment axis 240 may extend through the opening which is closed by both the first and second front openable portions 146. In some embodiments, there may be only one front openable portion 146, and the alignment axis 240 may extend through the opening which is closed by the one front openable portion 146. In any such embodiments, the alignment axis 240 may also extend through the suction motor 128, the energy store housing 206, or both.
For example, in the embodiments illustrated in
As another example, in the embodiments illustrated in
As yet another example, in the embodiments illustrated in
In the illustrated embodiments, the alignment axis 240 is shown as coaxial with the motor axis 196 and hand vacuum axis 116 wherever possible for clarity of illustration. Additionally, for clarity of illustration, a single alignment axis 240 may be referenced as representative of the alignment of, for example, the suction motor 128 and the front openable portion 146 as well as the energy store housing 206 and the front openable portion 146, despite the suction motor 128 and energy store housing 206 being laterally spaced apart. It will be appreciated that the alignment axis 240 may be at any other position between the upper and lower ends of the opening which is closed by the second front openable portion 1462 and which is different from the motor axis 196, hand vacuum axis 116, or the illustrated placement of the alignment axis 240 that is representative of the axial alignment of the second front openable portion 1462 and the various components discussed in this section.
It will be appreciated that some of the principles and relationships described in this section may be similarly applicable to the lower openable portion(s) of the air treatment assembly 120. The corresponding description detailing such principles and relationships with respect to the lower openable portion(s) have been omitted for brevity.
Energy Store Housing Under Air Treatment ChamberA hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have an energy store housing that is at least partially under the air treatment chamber. In accordance with this aspect, at least one energy store within the energy store housing may be at least partially under the air treatment chamber. Optionally, in accordance with this aspect, the energy store housing may also be positioned at a rear end of the dirt collection chamber.
When the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may be positioned at least partially, optionally fully, under the air treatment chamber 140. In such embodiments, at least one energy store 134 within the energy store housing 206 may therefore be at least partially under the air treatment chamber 140. Accordingly, in such embodiments, an alignment plane 242 that is transverse to the hand vacuum axis 116 that extends through the energy store housing 206 (and optionally at least one energy store 134 therein) may also extend through the air treatment chamber 140. In embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144, the energy store housing 206 may also be positioned at least partially, optionally fully, under the dirt collection chamber 144. In this way, the energy store housing 206 may be at least partially, optionally fully, under the air treatment assembly 120. In such embodiments, at least one energy store 134 within the energy store housing 206 may therefore be at least partially under the dirt collection chamber 144. Optionally, in some embodiments, the alignment plane 242 may also extend through the dirt collection chamber 144 between the energy store housing 206 (and optionally at least one energy store 134 therein) and the air treatment chamber 140.
For example, in the embodiments illustrated in
As another example, in the embodiment illustrated in
In embodiments wherein the air treatment assembly 120 includes an external dirt collection chamber 144 at least a portion of which is below the air treatment chamber 140, the rear end of the dirt collection chamber 144 may be at the forward end of the energy store housing 206. Optionally, the energy store housing 206 may be at least partially nested in the dirt collection chamber 144 such that the dirt collection chamber 144 may be positioned on two or more sides of the energy store 134 as described previously herein. For example, in the embodiments illustrated in
In some embodiments, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may also be positioned at least partially, optionally fully, under the pre-motor filter 130. In such embodiments, at least one energy store 134 within the energy store housing 206 may therefore be at least partially under the pre-motor filter 130. In this way, the energy store housing 206 may be at least partially, optionally fully, under the air treatment chamber 140 and the pre-motor filter 130. In such embodiments, the same energy store(s) 134, different energy stores 134, or some same and some different energy stores 134 within the energy store housing 206 may therefore be at least partially under the pre-motor filter 130 and the air treatment chamber 140. Optionally, in some embodiments, the alignment plane 242 may also extend through the pre-motor filter 130 between the energy store housing 206 (and optionally at least one energy store 134 therein) and the air treatment chamber 140.
For example, in the embodiment illustrated in
When the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may be positioned at least partially, optionally fully, forward of the suction motor 128. In such embodiments, the suction motor 128 may be positioned in the main body housing 138 and/or a rearwardly extending portion thereof. The suction motor 128 may be at a location that is rearward of some or all of the energy store housing 206 and some or all of the energy stores 134 therein.
For example, in the embodiments illustrated in
In some embodiments, where the energy store housing 206 is positioned at least partially forward of the suction motor 128 which is positioned at least partially in a rearwardly extending portion of the main body housing 138, an end of the handle 136 may be provided on or connected to the rearwardly extending portion of the main body housing 138. In this way, another alignment plane 242 that is transverse to the hand vacuum axis 116 and that extends through the finger gap 194 may also extend through at least one of the suction motor 128 and the energy store housing 206 (and optionally at least one energy store 134 therein).
For example, in the embodiments illustrated in
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have a portion of the airflow path pass through the handle to or from the suction motor. Optionally, in accordance with this aspect, the suction motor may be at the lower end of the handle.
After exiting the chamber air outlet(s) 170 of the air treatment chamber 140, the airflow path 126 may continue to the suction motor 128 through any intervening components of the hand vacuum 100 that are upstream of the suction motor 128. After passing through the suction motor 128, the airflow path 126 may continue to the clean air outlet 124 through any intervening components of the hand vacuum 100 that are downstream of the suction motor 128. In some embodiments, one of the intervening components that is upstream or downstream of the suction motor 128 may be the handle 136. Accordingly, in such embodiments, the airflow path 126 may pass through part or all of a handle (e.g., one or more of the underhand grip portion 182, the pistol grip portion 186, the lower housing section 190, and the finger guard 192 of the handle 136). This may depend, for example, on the type of handle 136 and how it is connected to the main body 118. This may also depend, for example, on the location of the suction motor 128 relative to the handle 136 (i.e., upstream, downstream, or within or portion thereof). The portions of the handle 136 through which the airflow path 126 passes may be hollow or may have an airflow conduit formed therein.
For example, in the embodiment illustrated in
As another example, in the embodiment illustrated in
When the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the airflow path 126 may travel generally forwardly, rearwardly, upwardly, downwardly, or any other direction to an inlet of the suction motor 128. The inlet of the suction motor 128 may be generally rearwardly facing, forwardly facing, downwardly facing, or upwardly facing, which facing direction may influence the direction of travel of the airflow path 126.
For example, in the embodiment illustrated in
The suction motor 128 generating the airflow path 126 through the handle 136 may be at any position described herein relative to the remaining components of the hand vacuum 100. For example, the suction motor 128 may be at any position described herein relative to the air treatment assembly 120, such as at least partially under the air treatment chamber 140 (see e.g.,
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have a return airflow path from a return air inlet at the lower end of the hand vacuum cleaner to the suction motor. The return airflow path may enable the suction motor to provide airflow for a docking station when the hand vacuum cleaner is docked to the docking station.
The hand vacuum 100 may have a return air inlet 236. The return air inlet 236 may be provided at any location on the hand vacuum 100 suitable for establishing airflow communication with station air outlet 232 of a docking station 214 when the hand vacuum 100 is docked to the docking station 214. For example, the return air inlet 236 may be provided at the lower end 114 at any location between the front end 108 and the rear end 110 of the hand vacuum 100.
For example, in the embodiments illustrated in
The hand vacuum 100 may further have a return airflow path 246 extending from the return air inlet 236 to the clean air outlet 124 of the hand vacuum 100. The suction motor 128 may be positioned in the return airflow path 246 between the return air inlet 236 and the clean air outlet 124. Accordingly, the suction motor 128 may be operable to generate suction along the return airflow path 246. Further, when the hand vacuum 100 is docked to the docking station 214 such that the station air outlet 232 is in fluid communication with the return air inlet 236, the suction motor 128 may be operable to generate suction along the return airflow path 246 and the station airflow path 224 (described previously herein) to draw the contents of the air treatment chamber 140 and/or dirt collection chamber 144 of the hand vacuum 100 into the docking station 214.
If the return air inlet 236 is provided at the lower end 114 of the hand vacuum 100, the return airflow path 246 extending from the return air inlet 236 may therefore be provided at least partially along the lower end 114 of the hand vacuum 100. The suction motor 128 may similarly be provided at the lower end 114 of the hand vacuum 100 to reduce the length of the return airflow path 246. The suction motor 128 may further be oriented such that an inlet of the suction motor 128 faces generally toward the return air inlet 236 to further reduce the length of the return airflow path 246. This may provide a more compact hand vacuum 100.
For example, in the embodiment illustrated in
As another example, in the embodiments illustrated in
The hand vacuum 100 may further have a return air valve 234 positioned at the return air inlet 236. The return air valve 234 may have a closed position in which the return air valve 234 may be at any location that will block air flow through the return airflow path 246 during a cleaning mode of operation (e.g., it may be positioned over the return air inlet 236). In the closed position, the return air valve 234 may thus seal the return airflow path 246. In this way, when the return air valve 234 is in the closed position, the suction motor 128 of the hand vacuum 100 may only be in fluid communication with the dirty air inlet 122 of the hand vacuum 100 and the hand vacuum 100 may therefore be operable the clean a surface. The return air valve 234 may be moveable from the closed position to an open position (which may also be referred to as an evacuation position when docked to a docking station 214). In the open position, the suction motor 128 of the hand vacuum 100 may be operable to draw in air through the return air inlet 236 and along the return airflow path 246. That is, the suction motor 128 may be in fluid communication with the return air inlet 236. Optionally, in the open position, the return air valve 234 may block the airflow path 126 through the hand vacuum 100 such that the suction motor 128 may be cut off from fluid communication with the dirty air inlet 122. In such an embodiment, when the suction motor is actuated, all air drawn to the suction motor enters through the return air inlet 236.
For example, in the embodiments illustrated in
As described previously, the return air valve 234 may be electromechanically actuated (e.g., by an independent motor or solenoid), which may automatically move return air valve 234 to the open position when the hand vacuum 100 is docked to the docking station 214 and return the return air valve 234 to the closed position when the hand vacuum 100 is removed. The return air valve 234 may alternatively be mechanically actuated (e.g., driven to the open position by the return air conduit 226 or other suitable engagement actuator when docked and returned to the closed position by a biasor such as a magnet, spring, torsion spring, etc., when removed from the docking station 214).
For example, in the embodiments illustrated in
Optionally, the biasing force biasing the return air valve 234 to the closed position may be overcome by suction force generated by the suction motor 128. In this way, when the hand vacuum 100 is in use to clean a surface, if the airflow path 126 becomes clogged with debris, the return air valve 234 may function as a bleed valve. That is, the suction force of the suction motor 128 may overcome the biasing force to open the return airflow path 246 and thereby provide relief airflow. This may advantageously prevent burnout of the suction motor 128.
The return air valve 234 may be any valve type suitable for sealing the return air inlet 236 in the closed position and moveable to an open position. For example, suitable types of valves may include a pivotable door, a slidable door, a plug/stopper, or a linkage including a combination thereof. Any other type of valve may be used.
For example, in the embodiments illustrated in
As another example, in the embodiments illustrated in
As another example, in the embodiments illustrated in
As yet another example, in the embodiments illustrated in
In the alternative to a return air valve 234, or optionally in addition, a front portion 235 of the hand vacuum 100 may be moveable (e.g., slidable/translatable) relative to a rear portion 237 of the hand vacuum 100 between a closed position and an open position. In such embodiments, the return air inlet 236 may be provided in the rear portion 237 at the interface of the front portion 235 and the rear portion 237. In this way, the front and rear portions 235, 237 may together function as a return air valve to open and close the return airflow path 246. In a closed position, the front portion 235 may be aligned with the rear portion 237 such that the airflow path 126 through the front portion 235 may be connected to the airflow path 126 through the rear portion 235. Accordingly, in the closed position, the suction motor 128 of the hand vacuum 100 may only be in fluid communication with the dirty air inlet 122 of the hand vacuum 100 along the normal hand vacuum airflow path 126 and the hand vacuum 100 may be operable the clean a surface. In such embodiments, the return air inlet 236 may be blocked by part of the front portion 235. It will be appreciated that a seal such as a gasket or the like may be provided on the rear portion 237 to seal or assist in sealing the return air inlet 236 when the hand vacuum cleaner is in the cleaning configuration exemplified in
In the embodiments illustrated in
For example, in the embodiment illustrated in
The front portion 235 and the rear portion 237 may be divided at any location between the front and rear ends 108, 110 of the hand vacuum 100 suitable for exposing the return airflow path 246 when the front portion 235 is moved to the open position. For example, in the embodiment illustrated in
The front portion 235 may be moved between the open and closed positions by any suitable means. For example, the front portion 235 may be held in the closed position in alignment with the rear portion 237 by a lock (e.g., one or more latches, retractable pins, and the like). The lock may be manually actuated by the user (e.g., by a release button, switch, and the like) to unlock the front portion 235 and the user may then move the front portion 235 to the open position. The lock may alternatively be automatically actuated as the hand vacuum 100 is docked to the docking station 214 such that the docking motion unlocks the front portion 235 enabling movement of the front portion 235 to the open position.
For example, in the embodiment illustrated in
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have an evacuation airflow path. Optionally, in accordance with this aspect, the evacuation airflow path may bypass the pre-motor filter.
In addition to the return airflow path 246 described in the previous section, the hand vacuum 100 may further have an evacuation air inlet 248 at an upstream end of an evacuation airflow path 250. The evacuation air inlet 248 may be provided at any location on the hand vacuum 100 suitable for drawing air from the ambient when the hand vacuum 100 is docked to the docking station 214. For example, the evacuation air inlet 248 may be provided at the upper end 112, the lower end 114, or a lateral side of the hand vacuum 100 at any location between the front and rear ends 108, 110 thereof. The evacuation air inlet 248 may alternatively be provided at the rear end 110 of the hand vacuum 100 at any location between the upper and lower ends 112, 114 thereof. When the hand vacuum 100 is docked to the docking station 214 and in the evacuation mode, the suction motor 128 may be in fluid communication with the evacuation air inlet 248 through the docking station 214 and operable to generate suction to draw air from the ambient into evacuation air inlet 248 along the evacuation airflow path 250 to assist in emptying the contents of the dirt collection chamber 144 and/or the air treatment chamber 140 into the docking station 214. The evacuation air inlet 248 may therefore be spaced apart from the clean air outlet 124 (which may exhaust to the ambient) to minimize the amount of heated exhaust air being recirculated through the hand vacuum 100. This may prevent the suction motor 128 from overheating.
For example, in the embodiments illustrated in
When the hand vacuum 100 is docked to the docking station 214 and in the evacuation mode, the suction motor 128 may be in fluid communication with both the dirty air inlet 122 and the evacuation air inlet 248 through the docking station 214 and operable to generate suction along the station airflow path 224 and the evacuation airflow path 250 to draw the contents of the dirt collection chamber 144 and/or the air treatment chamber 140 through the opening of the openable portion 146 and into the docking station 214. In such embodiments, the air drawn into the hand vacuum 100 through the evacuation air inlet 248 may assist in emptying the dirt and debris collected in/on the components of the hand vacuum 100 into the docking station 214. Alternatively, when the hand vacuum 100 is docked to the docking station 214, the dirty air inlet 122 may be blocked such that, in the evacuation mode, the suction motor 128 may be in fluid communication with the evacuation air inlet 248 only through the docking station 214 and operable to generate suction along the evacuation airflow path 250 to empty the dirt and debris collected in/on the components of the hand vacuum 100 into the docking station 214.
The air drawn into the hand vacuum 100 through the evacuation air inlet 248 may follow an evacuation airflow path 250 extending from the evacuation air inlet 248 to the opening of the openable portion(s) 146 of the air treatment assembly 120 when the hand vacuum 100 is docked to the docking station 214. One or more of the pre-motor filter 130, the porous outlet 172, the air treatment chamber 140, and the dirt collection chamber 144 may be positioned in the evacuation airflow path 250. If the evacuation airflow path 250 extends through the pre-motor filter 130 and/or the porous outlet 172, the airflow may travel in the opposite direction to the airflow path 126 when the hand vacuum 100 is in use to clean a surface. In this way, the evacuation airflow path 250 may advantageously strip particulate matter from the upstream side (with respect to the hand vacuum cleaner being used to clean a surface) of the pre-motor filter 130 and/or the porous outlet 172, thereby cleaning the pre-motor filter 130 and/or the porous outlet 172. The stripped particulate matter may then be carried along the evacuation airflow path 250 downstream to the docking station 214. If the evacuation airflow path 250 extends through the air treatment chamber 140 and/or the dirt collection chamber 144, the airflow may also carry particulate matter collected therein through the opening of the openable portion(s) 146 into the docking station 214. Accordingly, when the hand vacuum 100 is docked to the docking station 214 such that the station air outlet 232 is in fluid communication with the return air inlet 236, the suction motor 128 may be operable to generate suction along the return airflow path 246, the station airflow path 224 (described previously herein), and the evacuation airflow path 250. In this way, the suction motor 128 may be operable to draw particulate matter collected in the air treatment chamber 140 and/or dirt collection chamber 144 and, in some embodiments, to draw particulate matter collected on the pre-motor filter 130 and/or the porous outlet 172, into the docking station 214.
The hand vacuum 100 may have an evacuation air valve 252 positioned to close the evacuation air inlet 248. The evacuation air valve 252 may have a closed position in which the evacuation air valve 252 is positioned over the evacuation air inlet 248. In the closed position, the evacuation air valve 252 may thus seal the evacuation airflow path 250. In this way, when the evacuation air valve 252 is in the closed position, the suction motor 128 of the hand vacuum 100 may be in fluid communication with the dirty air inlet 122 of the hand vacuum 100 and may therefore be operable the clean a surface. The evacuation air valve 252 may be moveable to an evacuation position when docked to the docking station 214. In the evacuation position, the suction motor 128 of the hand vacuum 100 may be operable to draw in air through the evacuation air inlet 248 and along the evacuation airflow path 250.
The evacuation air valve 252 may be any valve type as described previously with respect to the return air valve 234 and may be at any location that will block air flow through the evacuation air inlet 248 during a cleaning mode of operation. The evacuation air valve 252 may be independently moved between the closed and evacuation positions in any way similar to as described with respect to the return air valve 234. Alternatively, the evacuation air valve 252 may be part of the valve assembly (e.g., a linkage assembly) through which the evacuation air valve 252 may be connected to the return air valve 234. In such embodiments, movement of the return air valve 234 between the closed and open positions may simultaneously drive movement of the evacuation air valve 252 via links of the valve assembly between the closed and evacuation positions. In this way, only one driving action on the valve assembly (e.g., docking the hand vacuum 100) may move both valves 234, 252 to their respective open/evacuation positions and only one biasor of the valve assembly (e.g., magnet, spring) may return both valves 234, 252 to their respective closed positions.
For example, in the embodiment illustrated in
As another example, in the embodiment illustrated in
As another example, in the embodiment illustrated in
As another example, in the embodiment illustrated in
As another example, in the embodiment illustrated in
As yet another example, in the embodiment illustrated in
In the alternative to an evacuation air valve 252, or optionally in addition, a front portion 235 of the hand vacuum 100 may be moveable (e.g., slidable/translatable) relative to a rear portion 237 of the hand vacuum 100 between a closed position and an open position. In such embodiments, the evacuation air inlet 248 may be provided at a rear end of the front portion 235 at the interface of the front portion 235 and the rear portion 237. In this way, the front and rear portions 235, 237 may together function as an evacuation air valve to open and close the evacuation airflow path 250. It will be appreciated that a seal such as a gasket or the like may be provided on one or both of the front portion 235 and the rear portion 237 to seal or assist in sealing the evacuation air inlet 248 to prevent the ingress of ambient air through, e.g., the lower surface of the hand vacuum cleaner when the hand vacuum cleaner is in the cleaning configuration exemplified in
For example, in the embodiment illustrated in
The evacuation air inlet 248 may be provided at any suitable location at the interface of the front and rear portion 235, 237. For example, in the embodiment illustrated in
The front portion 235 and the rear portion 237 may be divided at any location between the front and rear ends 108, 110 of the hand vacuum 100 suitable for exposing the evacuation airflow path 250 when moved to the open position. For example, in the embodiment illustrated in
The front portion 235 may be moved between the open and closed positions by any suitable means as described previously herein.
It will be appreciated that in any embodiment described herein, the dirty air inlet 122 may be blocked such that ambient air is drawn into the hand vacuum 100 through the evacuation air inlet 248 only. This may increase the suction force generated along the evacuation airflow path 250. The dirty air inlet 122 may be blocked by inserting the dirty air inlet into a closed nozzle receiving chamber of the dock or by a closeable valve.
Alternatively, the dirty air inlet 122 may be open such that ambient air is drawn into the hand vacuum 100 through the both the dirty air inlet 122 and the evacuation air inlet 248. In such embodiments, air drawn in through the dirty air inlet 122 may pass through one or both of the air treatment chamber 140 and the dirt collection chamber 144, and air drawn in through the evacuation air inlet 248 may also pass through one or both of the air treatment chamber 140 and the dirt collection chamber 144. Optionally, air drawn in through the dirty air inlet 122 and the evacuation air inlet 248 may pass through the same one(s), different one(s), or at least one common one of the air treatment chamber 140 and the dirt collection chamber 144.
In embodiments in which the evacuation airflow path 250 passes through the pre-motor filter 130 and/or porous outlet(s) 172, this may advantageously improve the cleaning of the pre-motor filter 130 and/or porous outlet(s) 172.
It will be appreciated that the valve assembly may be moved between the closed (cleaning) and open (emptying) positions by any means, such as an actuator on the dock (which may be a non-moveable rigid abutment pin or surface, an abutment pin or surface that is moveable (e.g., by a solenoid) between a non-engaging position and an engaging position, an actuator on the hand vacuum cleaner (which may be manually moveable or electromechanically moveable) etc.
As disclosed, a valve assembly is a combination of valves and mechanical links. Optionally, as disclosed, in a first position a valve may close a first passage and open a second passage and, in a second position, the valve may open the first passage and close the second passage. Accordingly, a valve assembly may have only two valves and one mechanical link which enables both valves to move concurrently. Alternately, a valve assembly may have three valves (a first of which is operable to open and close two passages) and the second and third of which each open and close a single passage. In such a case, a single mechanical link may be used to connect the first and second valves and a second mechanical link may be used to connect the second and third valves such that all three valves move concurrently.
Energy Store Housing and Suction Motor Under HandleA hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have the energy store housing and the suction motor at least partially under the handle. In accordance with this aspect, at least one energy store within the energy store housing may be at least partially under the handle.
The energy store housing 206 may be positioned at least partially adjacent to the suction motor 128 in the main body housing 138 at the lower end 114 of the hand vacuum 100. When the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may be positioned vertically adjacent to the suction motor 128 (i.e., vertically above or below) and at least partially overlapping in the direction of the hand vacuum axis 116. In this way, an alignment plane 242 that is transverse to the hand vacuum axis 116 and that extends through the energy store housing 206 may also extend through the suction motor 128. Alternatively, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may be positioned laterally adjacent to the suction motor 128 (i.e., on one or both lateral sides) and at least partially overlapping in the direction of the hand vacuum axis 116. In this way, an alignment plane 242 that is transverse to the hand vacuum axis 116 and that extends through the energy store 134 may also extend through the suction motor 128. In either such embodiments, the alignment plane 242 may also extend through one or more energy stores 134 within the energy store housing 206. In either such embodiments, the alignment plane 242 may further extend through the finger gap 194. Optionally, a lower end of the handle may be attached to one or both of the energy store housing 206 and the portion of the main body which houses the suction motor 128.
For example, in the embodiments illustrated in
The energy store housing 206 and the suction motor 128 may be positioned at least partially in the lower rearwardly extending portion of the main body housing 138. In such embodiments, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 and the suction motor 128 may be positioned at an elevation below the handle 136. In such embodiments, at least one energy store 134 within the energy store housing 206 may also be positioned under the handle 136. For example, the energy store housing 206 and the suction motor 128 may be positioned under a lower end of a pistol grip portion 186 of a pistol grip handle 136, under an underhand grip portion 182 of an underhand grip handle 136, or under a pistol grip portion 186 and/or an underhand grip portion 182 of a multi-grip handle 136. In embodiments where the energy store housing 206 and the suction motor 128 are positioned under an underhand grip portion 182, the lower rearwardly extending portion of the main body housing 138 may be spaced from the underhand grip portion 182 to provide a sufficient finger gap 194 for receiving a user's fingers therebetween. Where the energy store housing 206 and the suction motor 128 are positioned at least partially in the lower rearwardly extending portion of the main body housing 138 under the handle 136, an alignment plane 242 (which may be the same plane or a different plane that is transverse to the hand vacuum axis 116) may extend through the energy store housing 206, the suction motor 128, and the handle 136 (i.e., the underhand grip portion 182, if present, and/or the pistol grip portion 186, if present). The alignment plane 242 may also extend through one or more energy stores 134 within the energy store housing 206.
For example, in the embodiments illustrated in
In alternate embodiments, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 may be positioned axially adjacent to the suction motor 128 (i.e., forward or rearward) and at least partially overlapping in a direction transverse to the hand vacuum axis 116 such that an alignment axis 240 that is parallel to the hand vacuum axis 116 extends through the energy store housing 206 and the suction motor 128. The alignment axis 240 may further extend through one or more energy stores 134 within the energy store housing 206. The alignment axis 240 may further extend through the air treatment assembly 120, such as through the dirt collection chamber 144 below the air treatment chamber 140, as described previously herein. In such embodiments, an alignment plane 242 that is transverse to the hand vacuum axis 116 may extend through one of the energy store housing 206 and the suction motor 128 and may further extend through the finger gap 194. The alignment plane 242 may further extend through one or more energy stores 134 within the energy store housing 206.
In such embodiments, the energy store housing 206 and the suction motor 128 may be positioned at least partially in the lower rearwardly extending portion of the main body housing 138 such that, when the hand vacuum 100 is oriented with the dirty air inlet 122 at the upper end 112 of the hand vacuum 100 and the air inlet conduit 148 extending generally horizontally, the energy store housing 206 and the suction motor 128 may be positioned under the handle 136. In such embodiments, at least one energy store 134 within the energy store housing 206 may also be positioned under the handle 136. The energy store housing 206 may be positioned under a portion of the handle 136 including under a lower end of a pistol grip portion 186 of a pistol grip handle 136, under an underhand grip portion 182 of an underhand grip handle 136, or under a pistol grip portion 186 and/or an underhand grip portion 182 of a multi-grip handle 136. The suction motor 128 may be positioned under the same portion of the handle 136 as the energy store housing 206 and/or a different portion of the handle 136. Where the energy store housing 206 and the suction motor 128 are positioned at least partially in the lower rearwardly extending portion of the main body housing 138 under the handle 136, an alignment plane 242 (which may be the same plane or a different plane that is transverse to the hand vacuum axis 116) may extend through one of the energy store housing 206 and the suction motor 128 and may further extend through the handle 136 (i.e., the underhand grip portion 182, if present, and/or the pistol grip portion 186, if present). The alignment plane 242 may also extend through one or more energy stores 134 within the energy store housing 206.
For example, in the embodiment illustrated in
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have at least one energy store that is positioned at the handle in a vertical orientation.
The energy store(s) 134 may be provided in an energy store housing 206 that is removable from the hand vacuum cleaner and may be insertable into a chamber of the main body housing 138. For example, at least one energy store 134 may be provided in an upper rearwardly extending portion of the main body housing 138. In such embodiments, when the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the handle 136 may extend generally downwardly from the upper rearwardly extending portion of the main body housing 138 such that each energy store 134 in the upper rearwardly extending portion is above the upper end of the handle 136. Alternatively, at least one energy store 134 may be provided in a lower rearwardly extending portion of the main body housing 138. In such embodiments, when the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the handle 136 may extend generally upwardly from the lower rearwardly extending portion of the main body housing 138 such that each energy store 134 in the lower rearwardly extending portion is under the lower end of the handle 136. In either such embodiments, the pistol grip axis 188 may extend through the energy store housing 206 and at least one energy store 134 housed therein.
For example, in the embodiment illustrated in
Each energy store 134 may have a length, a width, and a height, where the length is the longest dimension of the energy store 134. When the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, the length (i.e., the longest dimension) of each energy store 134 may extend generally vertically. Accordingly, a longitudinally extending energy store axis 264 of at least one of the energy stores 134 may also extend through the handle 136.
For example, in the embodiment illustrated in
The suction motor 128 may be positioned forward of the energy stores 134 and axially aligned as described previously herein such that an alignment axis 240 that is parallel to the hand vacuum axis 116 extends through the suction motor 128 and the energy store housing 206. The alignment axis 240 may further extend through one or more energy stores 134 within the energy store housing 206. In some embodiments, the alignment axis 240 may also extend through the air treatment assembly 120 as described previously herein, such as through the dirt collection chamber 144 below the air treatment chamber 140.
For example, in the embodiments illustrated in
A hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have a curved pre-motor filter. In accordance with this aspect, the curved pre-motor filter may optionally be nested around a curved wall of the air treatment chamber.
A pre-motor filter 130 may have an upstream face and a downstream face in the direction of the airflow path 126. The upstream face, and optionally the downstream face, may be curved and they may have the same curvature. Optionally, the curvature of the upstream face of the pre-motor filter 130 may match the curvature of the treatment chamber sidewall 166. Where the upstream face of the pre-motor filter 130 faces the air treatment chamber 140, such as when the pre-motor filter 130 is provided at the rear end of a transversely or vertically extending air treatment chamber 140, providing a common curvature between the upstream face of the pre-motor filter 130 and the exterior of the treatment chamber sidewall 166 may advantageously increase surface area of the pre-motor filter 130 without increasing the size of the hand vacuum 100. That is, the curvature of the pre-motor filter 130 may provide a close fit around the air treatment chamber 140 while also increasing the surface area of the upstream face. This may also improve cleaning efficiency of the hand vacuum cleaner by enabling a higher air flow at the dirty air inlet. Although the curvature of the pre-motor filter 130 may provide a close fit around the air treatment chamber 140, the upstream face of the pre-motor filter 130 may be spaced from the treatment chamber sidewall 166 to provide a pre-motor filter header between the upstream face and the treatment chamber sidewall 166. This may advantageously provide a more even distribution of airflow across the upstream face of the pre-motor filter 130. This may further improve separation efficiency of the pre-motor filter 130.
For example, in the embodiments illustrated in
The downstream face of the pre-motor filter 130 may be any shape such as flat or curved. Optionally, if the downstream face of the pre-motor filter 130 is curved, the upstream and downstream faces of the pre-motor filter 130 may have a common curvature. For example, in the embodiments illustrated in
The curved pre-motor filter 130 may be any type of physical, porous filter media as described previously herein. For example, the pre-motor filter 130 may be formed from foam or any other suitable filter media such as a paper or cloth (e.g., cotton or polyester) pleated filter. The pleats of a pleated pre-motor filter 130 may have any orientation when the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, such as running generally vertically or generally horizontally. Any other orientation may be possible. Optionally, the pleats extend in a common direction with the central axis of the air treatment chamber (e.g., the cyclone axis of rotation in the air treatment chamber is a cyclone).
For example, in the embodiments illustrated in
When the hand vacuum 100 is oriented with the upper end 112 disposed above the lower end 114 and the hand vacuum axis 116 oriented horizontally, an alignment plane 242 extending in the direction of the hand vacuum axis 116 and in the vertical direction (i.e., through the upper and lower ends 112, 114 of the hand vacuum 100) may extend through the pre-motor filter 130 and one or more of the energy store housing 206 (and optionally one or more energy stores 134 therein), the suction motor 128, and the handle 136. For example, in the embodiments illustrated in
It will be appreciated that, optionally, a curved pre-motor filter may be positioned around a different side of the air treatment chamber (e.g., an upper side of a transversely extending air treatment chamber or a lateral side of a vertically extending air treatment chamber).
The curved pre-motor filter may surround up to 90°, up to 120°, up to 150°, up to 180° or more of the air treatment chamber.
Primary and Secondary Chamber Air Inlets at Same End of Air Treatment ChamberA hand vacuum cleaner using any one or more aspects discussed herein, including one or more of the other aspects set out herein in the general description and/or the detailed discussion, may have a primary chamber air inlet and at least one secondary chamber air inlet at the same end of the air treatment chamber.
The conduit sidewall 150 of the air inlet conduit 148 may surround and define a primary airflow channel 1521 extending from the dirty air inlet 122 to a primary dirty air outlet 1561. The conduit sidewall 150 may further surround and define at least one bypass airflow channel 1522 that branches (e.g., laterally or vertically) off of the primary airflow channel 1521. Each bypass airflow channel 1522 may extend from a channel communication port 158 to a bypass dirty air outlet 1562. Providing at least one bypass airflow channel 1522 distributes the airflow across different channels, which may advantageously mitigate pressure build-up, decreased separation efficiency, and/or burnout of the suction motor 128.
Each channel communication port 158 may be provided in the conduit sidewall 150 between the primary and bypass airflow channels 152 as described previously herein. Therefore, in operation, the airflow path 126 may travel generally radially outwardly from the primary airflow channel 1521 through the channel communication port 158 and into each bypass airflow channel 1522. Any channel communication port 158 may optionally be open (i.e., free of any porous filtration material) or, alternatively, may optionally include a porous filtration material 160, such as a screen or mesh, over the channel communication port 158. In such embodiments, the porous filtration material 160 may operate similarly as described previously. In particular, in operation, some air travelling through the primary airflow channel 1521 passes through the porous filtration material 160 into the bypass airflow channel 1522. The porous filtration material 160 may permit dirty air carrying fine dirt particles to pass through to the bypass airflow channel 1522, while restricting the passage of coarse dirt particles. Those coarse dirt particles that may become stuck on the porous filtration material 160 may be stripped off by the airflow travelling to the primary dirty air outlet 1561 of the primary airflow channel 1521 and through the corresponding primary chamber air inlet 1701. The fine dirt particles may then be carried downstream through the bypass airflow channel 1522 to the bypass dirty air outlet 1562 and through the corresponding bypass chamber air inlet 1702.
The primary dirty air outlet 1561 and each bypass dirty air outlet 1562 may be in fluid communication with the air treatment chamber 140 through an inlet port of a corresponding primary chamber air inlet 1681 or bypass chamber air inlet 1682. The chamber air inlets 168 may be tangential air inlets (i.e., directing incoming dirty airflow along the treatment chamber sidewall 166) provided at the same end of the air treatment chamber 140. As described previously herein, providing more than one tangential chamber air inlet 168 may advantageously enable the use of a smaller cyclone chamber and, therefore, may advantageously provide a more compact hand vacuum 100.
For example, in the embodiments illustrated in
Optionally, the primary airflow channel 1521, and therefore the primary chamber air inlet 1681, may have a cross-sectional flow area (the cross section transverse to the direction of flow) that is greater than that of each bypass airflow channel 1522 and bypass chamber air inlet 1682. Accordingly, the air treatment chamber 140 may have an axial length that is a multiple of the dimension of the inlet port of the primary chamber air inlet 1681 in the direction of the central axis 164 (i.e., the height) such that the portion of the airflow path 126 from the primary chamber air inlet 1681 completes a minimum desired number of revolutions within the air treatment chamber 140 before reaching a chamber air outlet of the air treatment chamber 140 (which may influence separation efficiency). The air treatment chamber 140 and the primary chamber air inlet 1681 may thus be sized to achieve a minimum desirable separation efficiency of the portion of the incoming airflow from the primary airflow channel 1521. Since each bypass airflow channel 1522 and bypass chamber air inlet 1682 has a smaller cross-sectional flow area than the primary airflow channel 1521 and primary chamber air inlet 1681, the portion of the incoming airflow from each bypass airflow channel 1522 may complete a greater number of revolutions within the air treatment chamber 140 and may therefore achieve a greater separation efficiency. This may therefore improve the overall separation efficiency of the air treatment assembly 120 while providing a more compact hand vacuum 100.
For example, in the embodiments illustrated in
While the above description describes features of example embodiments, it will be appreciated that some features and/or functions of the described embodiments are susceptible to modification without departing from the spirit and principles of operation of the described embodiments. For example, the various characteristics which are described by means of the represented embodiments or examples may be selectively combined with each other. Accordingly, what has been described above is intended to be illustrative of the claimed concept and non-limiting. It will be understood by persons skilled in the art that other variants and modifications may be made without departing from the scope of the invention as defined in the claims appended hereto. The scope of the claims should not be limited by the preferred embodiments and examples, but should be given the broadest interpretation consistent with the description as a whole.
This specification also includes the subject matter of the following clause sets:
CLAUSE SET A1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
2. The hand vacuum cleaner of clause 1 wherein the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and the line also extends through the dirt collection chamber.
3. The hand vacuum cleaner of clause 2 wherein a portion of the dirt collection chamber is located below the air treatment chamber and the line also extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
4. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber and the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened.
5. The hand vacuum cleaner of clause 1 further comprising a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path, and the return air path is located at the lower end of the hand vacuum cleaner.
6. The hand vacuum cleaner of clause 5 wherein the line also extends through the return air path.
7. The hand vacuum cleaner of clause 1 wherein at least one of the energy store and the motor and fan assembly underlies the air treatment chamber.
8. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
9. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment chamber.
10. The hand vacuum cleaner of clause 1 wherein at least one of the energy store and the motor and fan assembly underlies the handle.
11. The hand vacuum cleaner of clause 10 wherein at least one of the energy store and the motor and fan assembly underlies the air treatment chamber.
12. The hand vacuum cleaner of clause 10 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
13. The hand vacuum cleaner of clause 10 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment chamber.
14. The hand vacuum cleaner of clause 1 further comprising additional energy stores and the energy stores extend is a single axially extending row.
15. The hand vacuum cleaner of clause 1 further comprising additional energy stores and the energy stores extend is axially extending rows.
16. The hand vacuum cleaner of clause 1 further comprising additional energy stores and a plane that is transverse to the hand vacuum cleaner axis extends through at least some of the energy stores.
CLAUSE SET B1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
2. The hand vacuum cleaner of clause 1 wherein the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and the line also extends through the dirt collection chamber.
3. The hand vacuum cleaner of clause 2 wherein a portion of the dirt collection chamber is located below the air treatment chamber and the line also extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
4. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber and the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened.
5. The hand vacuum cleaner of clause 1 further comprising a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path, and the return air path is located at the lower end of the hand vacuum cleaner.
6. The hand vacuum cleaner of clause 5 wherein the line also extends through the return air path.
7. The hand vacuum cleaner of clause 1 wherein at least one of the energy store and the motor and fan assembly underlies the air treatment chamber.
8. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
9. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment chamber.
10. The hand vacuum cleaner of clause 1 wherein at least one of the energy store and the motor and fan assembly underlies the handle.
11. The hand vacuum cleaner of clause 10 wherein at least one of the energy store and the motor and fan assembly underlies the air treatment chamber.
12. The hand vacuum cleaner of clause 10 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
13. The hand vacuum cleaner of clause 10 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment chamber.
14. The hand vacuum cleaner of clause 1 further comprising additional energy stores and the energy stores extend is a single axially extending row.
15. The hand vacuum cleaner of clause 1 further comprising additional energy stores and the energy stores extend is axially extending rows.
16. The hand vacuum cleaner of clause 1 further comprising additional energy stores and a plane that is transverse to the hand vacuum cleaner axis extends through at least some of the energy stores.
CLAUSE SET C1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner and a plane that is transverse to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
2. The hand vacuum cleaner of clause 1 wherein the plane also extends through the handle.
3. The hand vacuum cleaner of clause 1 wherein the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and a line that is parallel to the hand vacuum cleaner axis extends through the dirt collection chamber and one of the energy store and the motor and fan assembly.
4. The hand vacuum cleaner of clause 3 wherein the plane also extends through the handle.
5. The hand vacuum cleaner of clause 3 wherein a portion of the dirt collection chamber is located below the air treatment chamber and the line extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
6. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber and the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened.
7. The hand vacuum cleaner of clause 1 further comprising a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path, and the return air path is located at the lower end of the hand vacuum cleaner.
8. The hand vacuum cleaner of clause 7 wherein a line that is parallel to the hand vacuum cleaner axis extends through the return air path and one of the energy store and the motor and fan assembly.
9. The hand vacuum cleaner of clause 1 wherein at least one of the energy store and the motor and fan assembly underlies the air treatment chamber.
10. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
11. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment chamber.
12. The hand vacuum cleaner of clause 1 wherein at least one of the energy store and the motor and fan assembly underlies the handle.
13. The hand vacuum cleaner of clause 12 wherein at least one of the energy store and the motor and fan assembly underlies the air treatment chamber.
14. The hand vacuum cleaner of clause 12 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
15. The hand vacuum cleaner of clause 12 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment chamber.
16. The hand vacuum cleaner of clause 1 further comprising additional energy stores and the energy stores extend is a single axially extending row.
17. The hand vacuum cleaner of clause 1 further comprising additional energy stores and the energy stores extend in axially extending rows.
18. The hand vacuum cleaner of clause 1 further comprising additional energy stores and a plane that is transverse to the hand vacuum cleaner axis extends through at least some of the energy stores.
CLAUSE SET D1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a pre-motor filter;
- (d) a motor and fan assembly provided in the air flow path; and,
- (e) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at an upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, in operation air travels downwardly from the air treatment chamber to the pre-motor filter.
2. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the pre-motor filter is positioned below the air treatment chamber.
3. The hand vacuum cleaner of clause 2 wherein the pre-motor filter underlies a portion of the air treatment chamber.
4. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the motor and fan assembly is positioned at a lower end of the hand vacuum cleaner.
5. The hand vacuum cleaner of clause 4 wherein the motor and fan assembly is positioned forward of the pre-motor filter.
6. The hand vacuum cleaner of clause 4 wherein the motor and fan assembly is positioned rearward of the pre-motor filter.
7. The hand vacuum cleaner of clause 4 wherein a line that is parallel to the hand vacuum cleaner axis extends through the pre-motor filter and the motor and fan assembly.
8. The hand vacuum cleaner of clause 7 wherein the motor and fan assembly is positioned forward of the pre-motor filter.
9. The hand vacuum cleaner of clause 7 wherein the motor and fan assembly is positioned rearward of the pre-motor filter.
10. The hand vacuum cleaner of clause 1 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the handle and the motor and fan assembly.
11. The hand vacuum cleaner of clause 1 further comprising an energy store and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the energy store is provided at a lower end of the hand vacuum cleaner.
12. The hand vacuum cleaner of clause 11 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the motor and fan assembly is positioned at a lower end of the hand vacuum cleaner.
13. The hand vacuum cleaner of clause 12 wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
14. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber and the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened.
15. The hand vacuum cleaner of clause 1 wherein the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and a line that is parallel to the hand vacuum cleaner axis extends through the dirt collection chamber and the motor and fan assembly.
16. The hand vacuum cleaner of clause 1 further comprising an energy store and the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and a line that is parallel to the hand vacuum cleaner axis extends through the dirt collection chamber and at least one of the motor and fan assembly and the energy store.
17. The hand vacuum cleaner of clause 1 further comprising an energy store and a plane that is transverse to the hand vacuum cleaner axis extends through the handle and at least one of the energy store and the motor and fan assembly.
18. The hand vacuum cleaner of clause 1 further comprising a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path, and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the return air path is located at the lower end of the hand vacuum cleaner.
19. The hand vacuum cleaner of clause 18 wherein a line that is parallel to the hand vacuum cleaner axis extends through the return air path and at least one of the pre-motor filter and the motor and fan assembly.
20. The hand vacuum cleaner of clause 1 further comprising an energy store and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the handle extends upwardly from a housing of at least one of the energy store and the motor and fan assembly.
CLAUSE SET E1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the opening and the energy store.
2. The hand vacuum cleaner of clause 1 wherein the air treatment assembly has a front wall, the openable portion comprises a portion of the front wall and the line also extends through the portion of the front wall.
3. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber and, when the openable portion is in the emptying position, the dirt collection chamber is opened.
4. The hand vacuum cleaner of clause 3 wherein a portion of the dirt collection chamber is located below the air treatment chamber and the line also extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
5. The hand vacuum cleaner of clause 3 wherein, when the openable portion is in the emptying position, the air treatment chamber is also opened.
6. The hand vacuum cleaner of clause 5 wherein a wall extends between the air treatment chamber and the dirt collection chamber and the openable portion comprises at least a portion of the wall.
7. The hand vacuum cleaner of clause 6 wherein the wall defines at least a portion of a dirt outlet of the air treatment chamber.
8. The hand vacuum cleaner of clause 7 wherein the air treatment assembly has a lower wall, the openable portion comprises at least a portion of the lower wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the openable portion rotates downwardly to the emptying position.
9. The hand vacuum cleaner of clause 1 wherein the air treatment assembly has a front wall, the openable portion comprises at least a portion of the front wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the at least a portion of the front wall rotates forwardly to the emptying position.
10. The hand vacuum cleaner of clause 9 further comprising a dirt collection chamber exterior to the air treatment chamber and, when the openable portion is in the emptying position, the dirt collection chamber is opened.
11. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber, the dirt collection chamber has a front wall, the openable portion comprises a portion of the front wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the portion of the front wall extends downwardly from a location at or below the air treatment chamber.
12. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the portion of the front wall rotates forwardly to the emptying position.
13. The hand vacuum cleaner of clause 10 wherein a wall extends between the air treatment chamber and the dirt collection chamber and the wall defines at least a portion of a dirt outlet of the air treatment chamber.
14. The hand vacuum cleaner of clause 13 wherein the air treatment assembly has a front wall, the openable portion comprises at least a portion of the front wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the at least a portion of the front wall rotates forwardly to the emptying position.
15. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path and a dirt collection chamber exterior to the air treatment chamber, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the air treatment assembly has an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, a portion of the dirt collection chamber is positioned below the air treatment chamber, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the portion of the dirt collection chamber and the energy store.
16. The hand vacuum cleaner of clause 15 wherein a wall extends between the air treatment chamber and the dirt collection chamber and the openable portion comprises at least a portion of the wall.
17. The hand vacuum cleaner of clause 16 wherein the wall defines at least a portion of a dirt outlet of the air treatment chamber.
18. The hand vacuum cleaner of clause 17 wherein the air treatment assembly has a lower wall, the openable portion comprises at least a portion of the lower wall and the openable portion rotates to the emptying position.
19. The hand vacuum cleaner of clause 15 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the handle and at least one of energy store and the motor and fan assembly.
20. The hand vacuum cleaner of clause 15 wherein at least one of energy store and the motor and fan assembly underlies the air treatment assembly.
CLAUSE SET F1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising a front wall, an air treatment chamber that is provided in the air flow path, and a dirt collection chamber exterior to the air treatment chamber, wherein the dirt collection chamber has a front wall, the air treatment chamber comprises a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet, wherein an inlet conduit extends rearwardly from the dirty air inlet and the inlet conduit has an inlet conduit axis that extends rearwardly through the inlet conduit;
- (c) a motor and fan assembly provided in the air flow path; and,
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and at least one of the motor and fan assembly and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the air treatment assembly has a first openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment assembly is emptyable through an opening, and
- wherein the front wall of the air treatment assembly has a stationary portion, which remains in position when the first openable portion is opened, and a moveable portion, the first openable portion comprises the moveable portion of the front wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the moveable portion of the front wall extends downwardly from a location at or below the air treatment chamber, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the opening and at least one of the motor and fan assembly and the energy store.
2. The hand vacuum cleaner of clause 1 wherein the energy store is provided at the lower end of the hand vacuum cleaner and a line that is parallel to the hand vacuum cleaner axis extends through the opening and the energy store.
3. The hand vacuum cleaner of clause 1 wherein the motor and fan assembly is provided at the lower end of the hand vacuum cleaner and a line that is parallel to the hand vacuum cleaner axis extends through the opening and the motor and fan assembly.
4. The hand vacuum cleaner of clause 3 wherein the energy store is provided at the lower end of the hand vacuum cleaner and a line that is parallel to the hand vacuum cleaner axis extends through the opening and the energy store.
5. The hand vacuum cleaner of clause 1 wherein the first openable portion also comprises at least a portion of a lower wall of the air treatment assembly.
6. The hand vacuum cleaner of clause 1 wherein the air treatment assembly comprises a second openable portion which is openable independently of the first openable portion.
7. The hand vacuum cleaner of clause 1 wherein the air treatment assembly comprises a second openable portion which is openable independently of the first openable portion and the second openable portion comprises at least a portion of a lower wall of the air treatment assembly.
8. The hand vacuum cleaner of clause 7 wherein the portion of the front wall is pivotally mounted to the air treatment assembly and the second openable portion is pivotally mounted ta a rear end of the second openable portion.
9. The hand vacuum cleaner of clause 7 wherein the second openable portion also comprises the portion of the front wall.
10. The hand vacuum cleaner of clause 9 wherein the portion of the front wall is pivotally mounted to the second openable portion and the second openable portion is pivotally mounted to a rear end of the second openable portion.
11. The hand vacuum cleaner of clause 1 wherein a wall extends between the air treatment chamber and the dirt collection chamber and the first openable portion comprises at least a portion of the wall.
12. The hand vacuum cleaner of clause 11 wherein the wall defines at least a portion of a dirt outlet of the air treatment chamber.
13. The hand vacuum cleaner of clause 7 wherein a wall extends between the air treatment chamber and the dirt collection chamber and the second openable portion comprises at least a portion of the wall.
14. The hand vacuum cleaner of clause 13 wherein the wall defines at least a portion of a dirt outlet of the air treatment chamber.
15. The hand vacuum cleaner of clause 7 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the second openable portion rotates downwardly to an emptying position of the second openable portion.
16. The hand vacuum cleaner of clause 1 wherein an end of the handle is provided on a housing which contains at least one of the motor and fan assembly and the energy store and the hand vacuum cleaner axis extends through a finger gap and a hand grip portion of the handle.
17. The hand vacuum cleaner of clause 16 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, a user interface is provided at an upper end of the handle.
18. The hand vacuum cleaner of clause 16 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the finger gap and at least one of the energy store and the motor and fan assembly.
19. The hand vacuum cleaner of clause 16 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the handle, a finger gap and at least one of the energy store and the motor and fan assembly.
CLAUSE SET G1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the energy store is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a plane that is transverse to the hand vacuum cleaner axis extends through the air treatment assembly and the energy store.
2. The hand vacuum cleaner of clause 1 wherein the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and the plane extends through the dirt collection chamber.
3. The hand vacuum cleaner of clause 2 wherein a portion of the dirt collection chamber is located below the air treatment chamber and the plane also extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
4. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber, the air treatment assembly comprises a stationary portion and an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the openable portion comprises a lower portion of the air treatment assembly.
5. The hand vacuum cleaner of clause 1 wherein the air treatment chamber comprises a cyclone.
6. The hand vacuum cleaner of clause 5 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, a cyclone axis of rotation of the cyclone extends generally horizontally.
7. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the motor and fan assembly is located at the lower end of the hand vacuum cleaner.
8. The hand vacuum cleaner of clause 7 wherein the motor and fan assembly is located rearwardly of the energy store.
9. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the energy store underlies the pre-motor filter.
10. The hand vacuum cleaner of clause 9 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the motor and fan assembly is located at the lower end of the hand vacuum cleaner.
11. The hand vacuum cleaner of clause 10 wherein the motor and fan assembly is located rearwardly of the energy store.
12. The hand vacuum cleaner of clause 7 wherein an end of the handle is provided on a housing which contains at least one of the motor and fan assembly and the energy store and the hand vacuum cleaner axis extends through a finger gap and a hand grip portion of the handle.
13. The hand vacuum cleaner of clause 12 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the finger gap and at least one of the energy store and the motor and fan assembly.
14. The hand vacuum cleaner of clause 12 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the handle, a finger gap and at least one of the energy store and the motor and fan assembly.
15. The hand vacuum cleaner of clause 7 wherein an end of the handle is provided on a housing which contains the motor and fan assembly and the hand vacuum cleaner axis extends through a finger gap and a hand grip portion of the handle.
16. The hand vacuum cleaner of clause 15 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the finger gap and at least one of the energy store and the motor and fan assembly.
17. The hand vacuum cleaner of clause 15 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the finger gap and the motor and fan assembly.
18. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the motor and fan assembly is located at an upper end of the handle.
19. The hand vacuum cleaner of clause 1 wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the handle.
20. The hand vacuum cleaner of clause 19 wherein the line that also extends through the air treatment assembly.
CLAUSE SET H1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface; and,
- (e) an energy store,
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner and the motor and fan assembly is provided at a lower end of the hand vacuum cleaner, and
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein a downstream air flow path extends from the air treatment assembly to the motor and fan assembly and the downstream air flow path comprises a conduit provided in the handle.
2. The hand vacuum cleaner of clause 1 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the air treatment assembly and the motor and fan assembly.
3. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the energy store is located at a lower end of the hand vacuum cleaner.
4. The hand vacuum cleaner of clause 1 wherein a line that is parallel to the hand vacuum cleaner axis extends through the air treatment assembly and the motor and fan assembly.
5. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the energy store is located at a lower end of the hand vacuum cleaner and a horizontal plane extends through the energy store and the motor and fan assembly.
6. The hand vacuum cleaner of clause 5 wherein a line that is parallel to the hand vacuum cleaner axis extends through the air treatment assembly and the motor and fan assembly.
7. The hand vacuum cleaner of clause 1 wherein the air treatment assembly further comprises a dirt collection chamber exterior to the air treatment chamber, and a line that is parallel to the hand vacuum cleaner axis extends through the motor and fan assembly and the dirt collection chamber.
8. The hand vacuum cleaner of clause 7 wherein a portion of the dirt collection chamber is located below the air treatment chamber and the line extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
9. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber, the air treatment assembly comprises a stationary portion and an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner, the openable portion comprises a lower portion of the air treatment assembly.
10. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter.
11. The hand vacuum cleaner of clause 10 wherein the motor and fan assembly underlies the pre-motor filter.
12. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter and at least one of the energy store and the motor and fan assembly underlies the pre-motor filter and the air treatment assembly.
13. The hand vacuum cleaner of clause 12 wherein the motor and fan assembly underlies the pre-motor filter and the air treatment assembly.
14. The hand vacuum cleaner of clause 1 further comprising a dirt collection chamber exterior to the air treatment chamber, the air treatment assembly comprises a stationary portion and an openable portion which is moveable from a closed position in which the hand vacuum cleaner is operable to clean a surface and an emptying position in which the air treatment chamber and the dirt collection chamber are opened, the dirt collection chamber has a front wall, the openable portion comprises a portion of the front wall and, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and an inlet conduit extending horizontally, the portion of the front wall extends downwardly from a location at or below the air treatment chamber.
15. The hand vacuum cleaner of clause 14 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet at the upper end of the hand vacuum cleaner and the inlet conduit extending horizontally, the portion of the front wall rotates forwardly to the emptying position.
16. The hand vacuum cleaner of clause 14 wherein a wall extends between the air treatment chamber and the dirt collection chamber and the wall defines at least a portion of a dirt outlet of the air treatment chamber.
17. The hand vacuum cleaner of clause 1 wherein the motor and fan assembly has an air inlet which faces rearwardly.
18. The hand vacuum cleaner of clause 1 further comprising a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path, and the return air path is located at the lower end of the hand vacuum cleaner.
19. The hand vacuum cleaner of clause 18 wherein the return air path underlies the motor.
CLAUSE SET I1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a main body housing a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with the main body
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner and a first plane that is transverse to the hand vacuum cleaner axis extends through at least one of the energy store and the motor and fan assembly, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
2. The hand vacuum cleaner of clause 1 wherein the first plane also extends through the handle.
3. The hand vacuum cleaner of clause 2 wherein the first plane also extends through the finger gap.
4. The hand vacuum cleaner of clause 1 wherein the first plane also extends through the finger gap.
5. The hand vacuum cleaner of clause 2 wherein a second plane that is transverse to the hand vacuum cleaner axis extends through at least one of the energy store and the motor and fan assembly and the handle and the second plane is rearward of the first plane.
6. The hand vacuum cleaner of clause 1 wherein a second plane that is transverse to the hand vacuum cleaner axis extends through at least one of the energy store and the motor and fan assembly and the handle and the second plane is rearward of the first plane.
7. The hand vacuum cleaner of clause 1 wherein the line also extends through the air treatment assembly.
8. The hand vacuum cleaner of any one of clauses 1-7 further comprising a dirt collection chamber that is exterior to the air treatment chamber and, when the hand vacuum cleaner is oriented with the energy store and the motor and fan assembly at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the line extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
9. The hand vacuum cleaner of clause 1 wherein the energy store is located forward of the motor and fan assembly.
10. The hand vacuum cleaner of clause 1 wherein the motor and fan assembly is located forward of the energy store.
11. The hand vacuum cleaner of any one of clauses 1-10 wherein the energy store is removable mounted to the main body.
12. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a main body housing a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with the main body
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store and the motor and fan assembly are provided at a lower end of the hand vacuum cleaner and a first plane that is transverse to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly, and
- wherein a line that is parallel to the hand vacuum cleaner axis extends through the energy store and the motor and fan assembly.
13. The hand vacuum cleaner of clause 12 wherein the first plane also extends through the handle.
14. The hand vacuum cleaner of clause 13 wherein the first plane also extends through the finger gap.
15. The hand vacuum cleaner of clause 12 wherein the first plane also extends through the finger gap.
16. The hand vacuum cleaner of clause 13 wherein a second plane that is transverse to the hand vacuum cleaner axis extends through at least one of the energy store and the motor and fan assembly and the handle and the second plane is rearward of the first plane.
17. The hand vacuum cleaner of clause 12 wherein a second plane that is transverse to the hand vacuum cleaner axis extends through at least one of the energy store and the motor and fan assembly and the handle and the second plane is rearward of the first plane.
18. The hand vacuum cleaner of clause 12 wherein the line also extends through the air treatment assembly.
19. The hand vacuum cleaner of any one of clauses 12-18 further comprising a dirt collection chamber that is exterior to the air treatment chamber and, when the hand vacuum cleaner is oriented with the energy store and the motor and fan assembly at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the line extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
20. The hand vacuum cleaner of any one of clauses 12-19 wherein the energy store is removably mounted to the main body.
CLAUSE SET J1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a main body housing a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with the main body, the energy store having a length, a width and a height and the length is a longest dimension of the energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner, the energy store is provided at a lower end of the hand vacuum cleaner and a first plane that is transverse to the hand vacuum cleaner axis extends through the motor and fan assembly and the handle, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner, the energy store provided at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the longest dimension extends generally vertically.
2. The hand vacuum cleaner of clause 1 wherein the energy store is a first battery.
3. The hand vacuum cleaner of clause 2 further comprising an energy store pack which comprises a plurality of batteries, which includes the first battery.
4. The hand vacuum cleaner of clause 3 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner, the energy store pack provided at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, at least two of the batteries extend generally vertically.
5. The hand vacuum cleaner of clause 3 wherein a line that is parallel to the hand vacuum cleaner axis extends through the motor and fan assembly and the energy store pack.
6. The hand vacuum cleaner of clause 3 wherein the motor and fan assembly is positioned forward of the energy store pack.
7. The hand vacuum cleaner of clause 6 wherein a line that is parallel to the hand vacuum cleaner axis extends through the motor and fan assembly and the energy store pack.
8. The hand vacuum cleaner of clause 7 wherein the line also extends through the air treatment assembly.
9. The hand vacuum cleaner of any one of clauses 1 to 8 further comprising a dirt collection chamber that is exterior to the air treatment chamber and, when the hand vacuum cleaner is oriented with the energy store at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the line extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
10. The hand vacuum cleaner of clause 1 wherein the motor and fan assembly is positioned forward of the energy store.
11. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a finger gap provided forward of the handle, and,
- (f) an energy store which, in operation, is provided with a main body, the energy store having a length, a width and a height and the length is a longest dimension of the energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at an upper end of the hand vacuum cleaner, the energy store provided at a lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, a lower end of the handle is provided on the main body and the longest dimension extends generally vertically.
12. The hand vacuum cleaner of clause 11 wherein the lower end of the handle is provided on an upper wall of the main body.
13. The hand vacuum cleaner of clause 11 wherein an energy store axis that extends through the energy store in a direction of the longest dimension also extends through the handle.
14. The hand vacuum cleaner of clause 11 wherein the handle comprises a pistol grip and the energy store axis extends through the pistol grip.
15. The hand vacuum cleaner of clause 11 wherein the energy store is a first battery.
16. The hand vacuum cleaner of clause 15 further comprising an energy store pack which comprises a plurality of batteries, which includes the first battery.
17. The hand vacuum cleaner of clause 16 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner, the energy store pack provided at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, at least two of the batteries extend generally vertically.
18. The hand vacuum cleaner of clause 16 wherein a line that is parallel to the hand vacuum cleaner axis extends through the motor and fan assembly and the energy store pack.
19. The hand vacuum cleaner of clause 16 wherein the motor and fan assembly is positioned forward of the energy store pack.
20. The hand vacuum cleaner of clause 19 wherein a line that is parallel to the hand vacuum cleaner axis extends through the motor and fan assembly and the energy store pack.
21. The hand vacuum cleaner of clause 20 wherein the line also extends through the air treatment assembly.
22. The hand vacuum cleaner of any one of clauses 1 -21 further comprising a dirt collection chamber that is exterior to the air treatment chamber and, when the hand vacuum cleaner is oriented with the energy store at the lower end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, the line extends through the portion of the dirt collection chamber at an elevation below the air treatment chamber.
23. The hand vacuum cleaner of clause 11 wherein the motor and fan assembly is positioned forward of the energy store.
CLAUSE SET K1. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) a cyclone assembly comprising a cyclone chamber provided in the air flow path, the cyclone chamber comprising a front end, a rear end, a cyclone chamber air inlet, a cyclone chamber air outlet, a cyclone axis of rotation;
- (c) a pre-motor filter having an upstream face and a downstream face;
- (d) a motor and fan assembly provided in the air flow path; and,
- (e) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the cyclone axis of rotation extends in a plane that is generally transverse to the hand vacuum cleaner axis and, when the hand vacuum cleaner axis extends horizontally, the cyclone axis of rotation extends generally horizontally, and
- wherein the pre-motor filter is curved and is provided on the rear end of the cyclone chamber.
2. The hand vacuum cleaner of clause 1 wherein the upstream face is curved.
3. The hand vacuum cleaner of clause 2 wherein the downstream face is curved.
4. The hand vacuum cleaner of clause 3 wherein the upstream and downstream faces have a common curvature.
5. The hand vacuum cleaner of clause 2 wherein the upstream face and the rear end of the cyclone chamber have a common curvature.
6. The hand vacuum cleaner of clause 1 further comprising a pre-motor filter header which is positioned adjacent the rear end of the cyclone chamber.
7. The hand vacuum cleaner of clause 1 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner and an energy store provided at the lower end of the hand vacuum cleaner, the plane extends through the pre-motor filter and the energy store.
8. The hand vacuum cleaner of clause 1 wherein the motor and fan assembly is provided at the lower end of the hand vacuum cleaner.
9. The hand vacuum cleaner of clause 1 further comprising a main body which houses the motor and fan assembly and, when the hand vacuum cleaner is oriented with the dirty air inlet provided at an upper end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, a lower end of the handle is provided on the main body.
10. The hand vacuum cleaner of clause 9 wherein the lower end of the handle is provided on an upper wall of the main body.
11. The hand vacuum cleaner of clause 9 further comprising an energy store which, in operation, is provided with the main body.
12. The hand vacuum cleaner of clause 11 wherein the energy store is removably mounted to the main body.
13. The hand vacuum cleaner of clause 11 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at an upper end of the hand vacuum cleaner, the energy store provided at a lower end of the hand vacuum cleaner, the lower end of the handle overlies the energy store.
14. A hand vacuum cleaner comprising:
-
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a dirty air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a pre-motor filter having an upstream face and a downstream face;
- (d) a main body housing a motor and fan assembly provided in the air flow path; and,
- (e) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner, and
- wherein the pre-motor filter is curved and is provided on the rear end of the air treatment chamber.
15. The hand vacuum cleaner of clause 14 wherein the upstream face is curved.
16. The hand vacuum cleaner of clause 15 wherein the downstream face is curved.
17. The hand vacuum cleaner of clause 16 wherein the upstream and downstream faces have a common curvature.
18. The hand vacuum cleaner of clause 15 wherein the upstream face and the rear end of the air treatment chamber have a common curvature.
19. The hand vacuum cleaner of clause 14 further comprising a pre-motor filter header which is positioned adjacent the rear end of the air treatment chamber.
20. The hand vacuum cleaner of clause 14 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at the upper end of the hand vacuum cleaner and an energy store provided at the lower end of the hand vacuum cleaner, the plane extends through the pre-motor filter and the energy store.
21. The hand vacuum cleaner of clause 14 wherein the motor and fan assembly is provided at the lower end of the hand vacuum cleaner.
22. The hand vacuum cleaner of clause 14 further comprising a main body which houses the motor and fan assembly and, when the hand vacuum cleaner is oriented with the dirty air inlet provided at an upper end of the hand vacuum cleaner and the hand vacuum cleaner axis extending horizontally, a lower end of the handle is provided on the main body.
23. The hand vacuum cleaner of clause 22 wherein the lower end of the handle is provided on an upper wall of the main body.
24. The hand vacuum cleaner of clause 22 further comprising an energy store which, in operation, is provided with the main body.
25. The hand vacuum cleaner of clause 24 wherein the energy store is removably mounted to the main body.
26. The hand vacuum cleaner of clause 22 wherein, when the hand vacuum cleaner is oriented with the dirty air inlet provided at an upper end of the hand vacuum cleaner, an energy store provided at a lower end of the hand vacuum cleaner, the lower end of the handle overlies the energy store.
CLAUSE SET L1. A surface cleaner comprising:
-
- (a) a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet with a cyclone assembly comprising a cyclone chamber, a pre-motor filter and a motor and fan assembly that are provided in the air flow path, wherein the surface cleaning mode air flow path comprises a downstream portion that extends from the cyclone chamber to the motor and fan assembly;
- (b) an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet; and,
- (c) a valve assembly operable to open the ambient air inlet port and the docking station return air inlet port,
- wherein a surface cleaner axis extends centrally through the surface cleaner from the front end of the surface cleaner to a rear end of the surface cleaner, and
- wherein the surface cleaner is operable in a surface cleaning mode wherein air travels from the dirty air inlet, through the downstream portion to the clean air outlet, and,
- wherein, when the surface cleaner is docked at a docking station, the surface cleaner is operable in an evacuation mode wherein air enters through the ambient air inlet port, travels through the cyclone in the absence of passing through the pre-motor filter, through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port.
2. The surface cleaner of clause 1 further comprising a cyclone chamber port and, in an evacuation mode, air travels from the ambient air inlet port to the cyclone chamber port.
3. The surface cleaner of clause 2 wherein the valve assembly concurrently opens the ambient air inlet port and the cyclone chamber port.
4. The surface cleaner of clause 2 wherein the cyclone chamber has a cyclone axis of rotation that extends in a plane that is generally transverse to the surface cleaner axis and, when the surface cleaner axis extends horizontally, the cyclone axis of rotation extends generally horizontally.
5. The surface cleaner of clause 4 wherein the cyclone chamber port is provided on a rear end of the cyclone chamber.
6. A surface cleaner comprising:
-
- (a) a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet with a cyclone assembly comprising a cyclone chamber, a pre-motor filter and a motor and fan assembly that are provided in the air flow path, wherein the surface cleaning mode air flow path comprises a downstream portion that extends from the cyclone chamber to the motor and fan assembly;
- (b) an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet; and,
- (c) a valve assembly operable to open a cyclone chamber port,
- wherein a surface cleaner axis extends centrally through the surface cleaner from the front end of the surface cleaner to a rear end of the surface cleaner, and
- wherein the surface cleaner is operable in a surface cleaning mode wherein air travels from the dirty air inlet, through the downstream portion to the clean air outlet, and,
- wherein, when the surface cleaner is docked at a docking station, the surface cleaner is operable in an evacuation mode wherein air travels from the ambient air inlet port, through the cyclone chamber port into the cyclone chamber in the absence of passing through the pre-motor filter, through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port.
7. The surface cleaner of clause 6 wherein the valve assembly concurrently opens the ambient air inlet port and the cyclone chamber port.
8. The surface cleaner of clause 6 wherein the cyclone chamber has a cyclone axis of rotation that extends in a plane that is generally transverse to the surface cleaner axis and, when the surface cleaner axis extends horizontally, the cyclone axis of rotation extends generally horizontally.
9. The surface cleaner of clause 8 wherein the cyclone chamber port is provided on a rear end of the cyclone chamber.
10. The surface cleaner of clause 6 wherein the valve assembly is operable to concurrently open the cyclone chamber port and the docking station return air inlet port.
11. A surface cleaner comprising:
-
- (a) a surface cleaning mode air flow path extending from a dirty air inlet to a clean air outlet with an air treatment assembly comprising an air treatment chamber, a pre-motor filter and a motor and fan assembly that are provided in the air flow path, wherein the surface cleaning mode air flow path comprises a downstream portion that extends from the air treatment chamber to the motor and fan assembly;
- (b) an evacuation air flow path comprising a first portion extending from an ambient air inlet port to an evacuation air outlet and a second portion extending from a docking station return air inlet port to the clean air outlet; and,
- (c) a valve assembly operable to open an air treatment chamber port, wherein a surface cleaner axis extends centrally through the surface cleaner from the front end of the surface cleaner to a rear end of the surface cleaner, and
- wherein the surface cleaner is operable in a surface cleaning mode wherein air travels from the dirty air inlet, through the downstream portion to the clean air outlet, and,
- wherein, when the surface cleaner is docked at a docking station, the surface cleaner is operable in an evacuation mode wherein air travels from the ambient air inlet port, through the air treatment chamber port into the air treatment chamber in the absence of passing through the pre-motor filter, through the docking station and subsequently enters the surface cleaner through the docking station return air inlet port.
12. The surface cleaner of clause 11 wherein the valve assembly concurrently opens the ambient air inlet port and the air treatment chamber port.
13. The surface cleaner of clause 11 wherein the air treatment chamber has an air treatment chamber axis that extends in a plane that is generally transverse to the surface cleaner axis and, when the surface cleaner axis extends horizontally, the air treatment chamber axis extends generally horizontally.
14. The surface cleaner of clause 13 wherein the air treatment chamber port is provided on a rear end of the air treatment chamber.
15. The surface cleaner of clause 11 wherein the valve assembly is operable to concurrently open the air treatment chamber port and the docking station return air inlet port.
Claims
1. A hand vacuum cleaner comprising:
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path; and,
- (f) a valve operable between a closed position in which the hand vacuum cleaner is operable to clean a surface and an evacuation position in which the return air flow path is in air flow communication with the motor and fan assembly,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner and, when the hand vacuum cleaner axis is oriented horizontally, the motor and fan assembly and the return air path are provided at a lower end of the hand vacuum cleaner, and
- wherein the motor and fan assembly has an air inlet which faces rearwardly.
2. The hand vacuum cleaner of claim 1 wherein the valve is located rearwardly of the motor and fan assembly.
3. The hand vacuum cleaner of claim 1 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the air treatment assembly and the motor and fan assembly.
4. The hand vacuum cleaner of claim 3 wherein the plane also extends through the return air flow path.
5. The hand vacuum cleaner of claim 3 wherein the valve is located rearwardly of the motor and fan assembly.
6. The hand vacuum cleaner of claim 1 further comprising a pre-motor filter wherein a plane that is transverse to the hand vacuum cleaner axis extends through the pre-motor filter and the motor and fan assembly.
7. The hand vacuum cleaner of claim 6 wherein the plane also extends through the return air flow path.
8. The hand vacuum cleaner of claim 6 wherein the valve is located rearwardly of the motor and fan assembly.
9. The hand vacuum cleaner of claim 6 wherein a plane that is transverse to the hand vacuum cleaner axis extends through the return air flow path and the motor and fan assembly.
10. A hand vacuum cleaner comprising:
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air exiting the docking station travels from the docking station air outlet port to the return air path; and,
- (f) a valve provided in the return air path, the valve operable between a closed position in which the hand vacuum cleaner is operable to clean a surface and an evacuation position in which the return air flow path is in air flow communication with the motor and fan assembly, wherein the valve is located rearwardly of the air treatment chamber,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner and, when the hand vacuum cleaner axis is oriented horizontally, the valve, the motor and fan assembly and the return air path are provided at a lower end of the hand vacuum cleaner.
11. The hand vacuum cleaner of claim 10 further comprising an energy store wherein the energy store is provided at the lower end of the hand vacuum cleaner.
12. The hand vacuum cleaner of claim 11 wherein the energy store is provided rearward of the motor and fan assembly.
13. The hand vacuum cleaner of claim 12 wherein, when the hand vacuum cleaner is oriented with the hand vacuum cleaner axis extending horizontally, a horizontal plane extends through the energy store and the motor and fan assembly.
14. The hand vacuum cleaner of claim 13 wherein the plane also extends through the air treatment assembly.
15. The hand vacuum cleaner of claim 13 wherein the valve is located rearwardly of the motor and fan assembly.
16. The hand vacuum cleaner of claim 15 wherein the energy store is located rearwardly of the valve.
17. A hand vacuum cleaner comprising:
- (a) an air flow path from a dirty air inlet located at a front end of the hand vacuum cleaner to a clean air outlet located rearward of the dirty air inlet;
- (b) an air treatment assembly comprising an air treatment chamber provided in the air flow path and a dirt collection chamber, the air treatment chamber comprising a front end, a rear end, an air treatment chamber air inlet and an air treatment chamber air outlet;
- (c) a motor and fan assembly provided in the air flow path;
- (d) a handle, which during use of the hand vacuum cleaner, is useable to direct the hand vacuum cleaner to clean a surface;
- (e) a return air path which is connectable in air flow communication with a docking station whereby, in an evacuation mode when the hand vacuum cleaner is docked with a docking station air outlet port, air travels from the docking station air outlet port to the return air path;
- (f) a valve operable between a closed position in which the hand vacuum cleaner is operable to clean a surface and an evacuation position in which the return air flow path is in air flow communication with the motor and fan assembly; and,
- (g) an energy store,
- wherein a hand vacuum cleaner axis extends centrally through the hand vacuum cleaner from the front end of the hand vacuum cleaner to a rear end of the hand vacuum cleaner and, when the hand vacuum cleaner axis is oriented horizontally, the motor and fan assembly and the return air path are provided at a lower end of the hand vacuum cleaner, and at least a portion of the motor and fan assembly is at an elevation below the air treatment assembly.
18. The hand vacuum cleaner of claim 17 wherein, when the hand vacuum cleaner is oriented with the hand vacuum cleaner axis extending horizontally, a horizontal plane extends through the energy store and the motor and fan assembly.
19. The hand vacuum cleaner of claim 18 wherein the plane also extends through the air treatment assembly.
20. The hand vacuum cleaner of claim 18 wherein the valve is located rearwardly of the motor and fan assembly.
21. The hand vacuum cleaner of claim 20 wherein the energy store is located rearwardly of the valve.
22. The hand vacuum cleaner of claim 1 wherein the dirty air inlet is provided at an upper end of the hand vacuum cleaner.
Type: Application
Filed: Nov 26, 2025
Publication Date: Aug 6, 2026
Inventor: Wayne Ernest Conrad (Hampton)
Application Number: 19/402,203