WINDOW AIR CONDITIONER
Provided is a window air conditioner. The window air conditioner includes an outdoor unit component, an indoor unit component, a transitional shielding member, and a pipeline assembly. The outdoor unit component includes an outdoor unit body. The indoor unit component includes an indoor unit body. The indoor unit component is rotatably connected to the outdoor unit component. The transitional shielding member is arranged at a rotational connection between the indoor unit component and the outdoor unit component, and the transitional shielding member cooperates with the indoor unit component and the outdoor unit component to form a passage. The pipeline assembly passes through the passage and is connected to the indoor unit body and the outdoor unit body.
The present application is submitted based on and claims priority to Chinese Patent Application Nos. 202210602504.5 and 202221359387.6, both filed on May 30, 2022, the entire disclosures of which are incorporated herein by reference.
FIELDThe present disclosure relates to the field of air conditioning technologies, and more particularly, to a window air conditioner.
BACKGROUNDA window air conditioner in the related art is an integrated air conditioner that may be mounted for use at a window opening. In order to meet noise reduction requirements, some window air conditioners are designed in a form of a saddle with an open bottom groove between an outdoor unit and an indoor unit, in order to allow the window air conditioners to be stuck on a window sill using the groove and block noise of an outdoor unit by a physical wall. However, such window air conditioner has a fixed configuration with pipe crossing and wire crossing from a top of the groove. Nevertheless, if this window air conditioner is improved into a deformable form, it is difficult to meet requirements for reliable pipe crossing or reliable wire crossing.
SUMMARYThe present disclosure aims to solve at least one of the technical problems in the related art. To this end, the present disclosure is to provide a window air conditioner, capable of reducing a difficulty of pipe routing or wire routing and ensuring reliability of the pipe routing or the wire routing while meeting a deformable requirement.
A window air conditioner according to embodiments of the present disclosure includes an outdoor unit component, an indoor unit component, a transitional shielding member, and a pipeline assembly. The outdoor unit component includes an outdoor unit body. The indoor unit component includes an indoor unit body. The indoor unit component is rotatably connected to the outdoor unit component. The transitional shielding member is arranged at a rotational connection between the indoor unit component and the outdoor unit component, and the transitional shielding member cooperates with the indoor unit component and the outdoor unit component to form a passage. The pipeline assembly passes through the passage and is connected to the indoor unit body and the outdoor unit body. Therefore, the window air conditioner according to the embodiments of the present disclosure can reduce the difficulty of the pipe routing or the wire routing and ensure reliability of the pipe routing or the wire routing while meeting the deformable requirement.
In some embodiments, the transitional shielding member is movable relative to the indoor unit component and the outdoor unit component. The transitional shielding member participates in forming a first communication opening and a second communication opening. The passage is in communication with the indoor unit body via the first communication opening, and the passage is in communication with the outdoor unit body via the second communication opening. During a relative rotation of the indoor unit component to the outdoor unit component, the first communication opening and the second communication opening are constantly in an open state. The pipeline assembly passes through the passage through the first communication opening and the second communication opening.
In some embodiments, the transitional shielding member includes a retractable shielding member. The retractable shielding member is connected to each of the indoor unit component and the outdoor unit component, and the retractable shielding member is deployed or retracted with the relative rotation of the indoor unit component to the outdoor unit component.
In some embodiments, the indoor unit component includes a first shielding housing located at the rotational connection. The outdoor unit component includes a second shielding housing located at the rotational connection. The first shielding housing and the second shielding housing are arranged in a transverse direction and rotatably connected to each other. At least one of the first shielding housing or the second shielding housing has an avoidance space configured to avoid the retractable shielding member.
In some embodiments, the transitional shielding member includes a shielding shell. The shielding shell is rotatable relative to the indoor unit component and the outdoor unit component.
In some embodiments, the indoor unit component and the outdoor unit component are pivotally connected to each other by a hinge assembly to rotate relatively about a unique pivot axis extending in a transverse direction. The shielding shell includes a top shell extending in the transverse direction and configured to shield above the hinge assembly. The shielding shell further includes an end shell connected to each of two transverse ends of the top shell. The end shell is rotatably and pivotally connected to the hinge assembly about the pivot axis.
In some embodiments, the first communication opening is formed between an inner side edge of the top shell and the indoor unit component. The second communication opening is formed between an outer side edge of the top shell and the outdoor unit component. The indoor unit component includes a first flange adapted to stop against an outer side of the inner side edge. The outdoor unit component includes a second flange adapted to stop against an inner side of the outer side edge.
In some embodiments, the hinge assembly includes a first articulation member arranged at the indoor unit component and a second articulation member arranged at the outdoor unit component. The second articulation member is hinged to the first articulation member to be reciprocally rotatable between a first angular position and a second angular position. When the second articulation member rotates to a third angular position between the first angular position and the second angular position from the first angular position, the second articulation member is in contact with the outer side edge to push the shielding shell to rotate synchronously towards the second angular position.
In some embodiments, when the second articulation member rotates to the third angular position from the second angular position, the second flange is in contact with the outer side edge to pull the shielding shell to rotate synchronously with the second articulation member towards the first angular position for resetting.
In some embodiments, the indoor unit component has at least one first pipeline clamp. The outdoor unit component has at least one second pipeline clamp. The pipeline assembly is fit with each of the first pipeline clamp and the second pipeline clamp.
In some embodiments, the indoor unit component includes a connection support adapted to pass through a window opening. The connection support has an outer end extending to be pivotally connected to an upper inner end of the outdoor unit body, to enable the outdoor unit body to rotate about a unique pivot axis extending in a transverse direction and located at the upper inner end of the outdoor unit body. An extending direction of the pipeline assembly in the connection support is changed at least once.
In some embodiments, the connection support and the indoor unit body are slidable relative to each other in an inward-outward direction. The pipeline assembly extends along a loop in the connection support.
Additional aspects and advantages of present disclosure will be provided at least in part in the following description, or will become apparent in part from the following description, or can be learned from the practice of the present disclosure.
The embodiments of the present disclosure will be described in detail below with reference to examples thereof as illustrated in the accompanying drawings, throughout which same or similar elements, or elements having same or similar functions, are denoted by same or similar reference numerals. The embodiments described below with reference to the drawings are illustrative only, and are intended to explain rather than limit the present disclosure.
Many different embodiments or examples according to the present disclosure are used to realize different structures of the present disclosure. To simplify the present disclosure, components and settings in specific examples are described below. Of course, they are merely exemplary and are not intended to limit the present disclosure. Moreover, the present disclosure may repeat reference numbers and/or reference letters in different examples. Such repetition is for purposes of simplicity and clarity and is not in itself indicative of a relationship among the various embodiments and/or settings discussed. In addition, the present disclosure provides examples of various specific processes and materials, but those skilled in the art may recognize application of other processes and/or use of other materials.
A window air conditioner 100 according to an embodiment of the present disclosure is described below with reference to the drawings.
As illustrated in
It should be noted that the window air conditioner 100 described herein is adapted to be arranged for use at the window opening 200. An inward-outward direction of the window opening 200 (i.e., a direction passing through the window opening 200) is a “longitudinal direction”; a width direction of the window opening 200 is a “transverse direction”; and a height direction of the window opening 200 is a “vertical direction.” In short, the indoor unit body 1 and the outdoor unit body 2 are spaced apart from each other in an inward-outward direction when the window air conditioner 100 is in the use configuration (such as a state illustrated in
In some optional examples, the indoor unit body 1 may include an indoor side heat exchanger, an indoor side fan, etc., and the outdoor unit body 2 may include a compressor, an outdoor side heat exchanger, an outdoor side fan, etc. The indoor unit body 1 is connected to the outdoor unit body 2 via a refrigerant pipeline, and therefore the indoor side heat exchanger, the outdoor side heat exchanger, the compressor, etc. constitute a refrigerant circulation system to realize a refrigeration cycle or a heating cycle. Of course, the present disclosure is not limited to thereto. For example, in some other embodiments of the present disclosure, the indoor side fan, the outdoor side fan, etc. may also be omitted, and no more examples are given herein.
As illustrated in
For example, mounting requirements, handling requirements, packaging requirements, or transportation requirements, or the like of the window air conditioner 100 are met by changing the configuration of the window air conditioner 100. As a result, the window air conditioner 100 does not need to be restricted by the use configuration of the window air conditioner 100 (for example, the configuration illustrated in
For example, with reference to
In an embodiment of the present disclosure, as illustrated in
Therefore, there is no need for piping or wiring separately outside the indoor unit component 101 and the outdoor unit component 102, eliminating any need for a subsequent mounting operation of piping or wiring. In this way, mounting efficiency of the window air conditioner 100 is improved. Moreover, the transitional shielding member 107 may serve to protect the pipeline assembly 103, to improve a service life and operating reliability of the pipeline assembly 103.
In some embodiments, the transitional shielding member 107 is movable (such as deforming or moving) relative to the indoor unit component 101 and the outdoor unit component 102. The transitional shielding member 107 participates in forming a first communication opening 501. The passage 50 is in communication with the indoor unit body 1 via the first communication opening 501. The transitional shielding member 107 further participates in forming a second communication opening 502. The passage 50 is in communication with the outdoor unit body 2 via the second communication opening 502. During a relative rotation of the indoor unit component 101 to the outdoor unit component 102, the first communication opening 501 and the second communication opening 502 are constantly in an open state.
Thus, by providing the transitional shielding member 107 and arranging the transitional shielding member 107 to be movable (such as deforming or moving) relative to the indoor unit component 101 and the outdoor unit component 102, to form the first communication opening 501 and the second communication opening 502 that are constantly opened, interference and damage to the pipeline assembly 103 caused by the relative rotation of the indoor unit component 101 to the outdoor unit component 102 can be avoided to further improve operating reliability of the pipeline assembly 103.
It should be noted that there are varieties of ways to arrange the transitional shielding member 107. For example, two simple optional embodiments will be mainly introduced below.
Embodiment 1As illustrated in
For example, the retractable shielding member 52 may be in a form of a folding fan and the like. Thus, when the outdoor unit component 102 and the indoor unit component 101 rotate relatively, the retractable shielding member 52 may be folded without affecting the pipeline assembly 103.
At this time, a part of the passage 50 corresponding to a connection between the retractable shielding member 52 and the indoor unit component 101 may be set as the first communication opening 501, and a part of the passage 50 corresponding to a connection between the retractable shielding member 52 and the outdoor unit component 102 may be set as the second communication opening 502. As such, when the indoor unit component 101 and the outdoor unit component 102 rotate relatively, the retractable shielding member 52 can be deployed and retracted to avoid the pipeline assembly 103, to ensure that the first communication opening 501 and the second communication opening 502 are constantly in an open state. Thus, this arrangement can simply and effectively achieve that the first communication opening 501 and the second communication opening 502 are constantly in an open state during a relative rotation of the indoor unit component 101 to the outdoor unit component 102.
Further, as illustrated in
Thus, providing the first shielding housing 32 and the second shielding housing 27 can realize the rotational connection between the indoor unit component 101 and the outdoor unit 102 on the one hand and can provide shielding and protection on the other hand; and furthermore, it can improve structural strength and reliability of the rotational connection as well as a rotation support capacity. Moreover, providing the avoidance space 271 configured to avoid the retractable shielding member 52 at at least one of the first shielding housing 32 or the second shielding housing 27 can increase a transverse coverage area of each of the first shielding housing 32 and the second shielding housing 27, and thus further improve the structural strength.
In another exemplary embodiment of the present disclosure, the first shielding housing 32 and the second shielding housing 27 each include a top plate extending in the transverse direction, and a length direction of the top plate is in the transverse direction. A side plate is arranged at each of two ends of the top plate in a length direction of the top plate, and the side plate is perpendicular to a top cover of an arc shape. Side plates of the first shielding housing 32 and the second shielding housing 27 close towards each other are connected by a rotary shaft (an ordinary rotary shaft or a damping rotary shaft) or a bearing, to realize the relative rotation of the indoor unit component 101 to the outdoor unit component 102.
The avoidance space 271 may be formed at the top plate and filled with the retractable shielding member 52, and the retractable shielding member 52 has an inner end connected to the indoor unit component 101 and an outer end connected to the outdoor unit component 102. A cross section of the top plate may be in upward convex arc-shape. Therefore, when the indoor unit component 101 and the outdoor unit component 102 rotate relatively, the top plate can be easily hidden and is not prone to interference.
Embodiment 2As illustrated in
In another exemplary embodiment of the present disclosure, as illustrated in
Since there is only one unique pivot axis L instead of having a plurality of pivot axes L, a rotation trajectory of the rotating component relative to the stationary component is determined. An installer can smoothly and reliably pull the rotating component to rotate. Thus, the configuration of the window air conditioner 100 can be ensured to be changed reliably and effectively. Moreover, since the rotation trajectory of the rotating component is determined and the rotating component is supported by the hinge assembly 106, an action of driving the rotating component to rotate can be simple, smooth, labor-saving, and reliable.
Further, with reference to
For example, in some embodiments, as illustrated in
For example, a hinge assembly 106 may be arranged at a position close to each end shell 512. Thus, the hinge assembly 106 can be pivotally connected to the end shell 512 by a shorter rotary shaft 44. Of course, the present disclosure is not limited thereto, and at least one hinge assembly 106 may be arranged between the two hinge assemblies 106, to improve stability and reliability of the pivotal connection between the outdoor unit component 102 and the indoor unit component 101, and thus to improve a support effect for the rotation of the outdoor unit component 102.
In another exemplary embodiment of the present disclosure, as illustrated in
In some embodiments, as illustrated in
Further, when the second articulation member 42 rotates to the third angular position (e.g., a position illustrated in
For example, as illustrated in
When the second articulation member 42 rotates to the position at the angle of 45° from the position at the angle of 0°, as illustrated in
When the second articulation member 42 rotates to the position at the angle of 45° from the position at the angle of 90° towards the position at the angle of 0°, as illustrated in
In short, when the outdoor unit component 102 rotates by an angle of 90°, the shielding shell 51 only rotates by an angle of 45°. However, the first communication opening 501 and the second communication opening 502 may still be kept open, and there is still a space for pipe routing and wire routing.
In some embodiments, as illustrated in
In other embodiments, the bottom shell 513 may not be connected to the two end shells 512, but may be connected to the indoor unit component 101. Of course, the shielding shell 51 may include no bottom shell 513. In this case, the indoor unit component 101 may have a bottom surface extending to the outdoor side to shield a bottom of the hinge assembly 106, which will not be described in detail herein.
In some embodiments of the present disclosure, as illustrated in
In another embodiment of the present disclosure, the end cover 514 is a physical cover without hollowing to allow for a better shielding effect. For example, the end cover 514 may be a plastic cover. The end cover 514 is provided with a snap at a surface of the end cover 514 facing towards the end shell 512, and the end shell 512 has a snap hole. The snap is in a snap-fit with the snap hole to achieve a fixed connection between the end cover 514 and the end shell 512, and thus to achieve the shielding and sealing for the end shell 512.
It should be noted that the first articulation member 41 and the indoor unit component 101 may be integrally formed or may be separately formed, and the second articulation member 42 and the outdoor unit component 102 may be integrally formed or may be separately formed.
When the first articulation member 41 and the indoor unit component 101 are separately formed and assembled together, and the second articulation member 42 and the outdoor unit component 102 are also separately formed and assembled together, there is no need for special structural design and processing of the indoor unit component 101 and the outdoor unit component 102, which reduces cost. Moreover, the first articulation member 41 and the second articulation member 42 that have been hinged are easily fixed at the indoor unit component 101 and the outdoor unit component 102, respectively, and reliability of the articulation can be well guaranteed. In addition, the first articulation member 41 and the second articulation member 42 may be made of suitable materials independently without being affected by materials selected for the indoor unit component 101 and the outdoor unit component 102, which can not only ensure reliability of the hinge assembly 106, but also enable the indoor unit component 101 and the outdoor unit component 102 not to be selected with special materials for the articulation. In this way, the cost is reduced to meet requirements of mass production.
When the first articulation member 41 and the indoor unit component 101 are integrally formed, and the second articulation member 42 and the outdoor unit component 102 are also integrally formed, reliability of the connection between the first articulation member 41 and the indoor unit component 101 as well as reliability of the connection between the second articulation member 42 and the outdoor unit component 102 can be guaranteed. Of course, the present disclosure is not limited thereto. The first articulation member 41 and the indoor unit component 101 may also be integrally formed, while the second articulation member 42 and the outdoor unit component 102 are separately formed. Alternatively, the first articulation member 41 and the indoor unit component 101 may be separately formed, while the second articulation member 42 and the outdoor unit component 102 may be integrally formed. The effects of these embodiments can be known by referring to the above description, and will not be repeated herein.
In some embodiments of the present disclosure, as illustrated in
For example, as illustrated in
In some embodiments of the present disclosure, as illustrated in
It should be noted that “the outer end of the connection support 3 extends to be pivotally connected to an upper inner end of the outdoor unit body 2” is intended to illustrate the connection position between the indoor unit component 101 and the outdoor unit body 2, and does not limit how to achieve the connection, for example, which may be a direct connection or an indirect connection. Moreover, a setting position of a linkage for the indirect connection is not limited, for example, which may be arranged at the connection support 3, or may be arranged at the indoor unit body 1.
That is, when one of the outdoor unit body 2 and the indoor unit component 101 serves as a rotating component and another one of the outdoor unit body 2 and the indoor unit component 101 serves as a stationary component, and a force is applied to enable the rotating component to rotate relative to the stationary component, there is only one unique pivot axis L for the rotating component to rotate relative to the stationary component instead of having a plurality of pivot axes L. As a result, a rotation trajectory of the rotating component relative to the stationary component can be guaranteed to be determined.
Therefore, when the configuration of the window air conditioner 100 needs to be changed, the rotating component may be allowed to rotate relative to the stationary component about the unique pivot axis L. Thus, the bottom of the outdoor unit body 2 can be easily raised or lowered. In addition, since the pivot connection between the indoor unit component 101 and the outdoor unit body 2 has the unique pivot axis L, the rotating component may be pulled smoothly and reliably to rotate relative to the stationary component about the unique pivot axis L based on the determined trajectory. Thus, the configuration of the window air conditioner 100 can be ensured to be changed reliably and effectively. In addition, since the rotation trajectory of the rotating component is determined and the rotating component is supported at the pivot connection (such as a position R illustrated in
In addition, since the pivot axis L extends in the transverse direction and is located at the upper inner end of the outdoor unit body 2, a reliable rotation support can be provided at the pivot axis L. Thus, the reliability of the rotation support of the outdoor unit body 2 can be improved. In this way, the structure of the outdoor unit body 2 can be simplified to reduce the cost. As a result, the assembly is simplified. Moreover, this arrangement can reduce a space swept by the rotation of the outdoor unit body 2 as a whole as well as drive torque required to drive the outdoor unit body 2 to rotate. As a result, the operation is more labor-saving, and a height of the window opening 200 is required to be relatively low.
In addition, in some embodiments, the outdoor unit body 2 is designed to be pivotally connected to the indoor unit component 101 to enable the outdoor unit body 2 to rotate about the unique pivot axis L extending in the transverse direction and located at the upper inner end of the outdoor unit body 2 relative to the indoor unit component 101, and therefore it can be easily realized that the outdoor unit body 2 may rotate until a bottom surface of the outdoor unit body 2 is flush with a bottom surface of the connection support 3 (for example, as illustrated in
In another exemplary embodiment of the present disclosure, an extending direction of the pipeline assembly 103 in the connection support is changed at least once. That is, the pipeline assembly 103 does not extend in a straight line in the connection support 3. Thus, the pipeline assembly 103 can have a predetermined movement allowance at a position close to the rotational connection. As a result, when the outdoor unit body 2 rotates relative to the indoor unit component 101, a risk of the pipeline assembly 103 being pulled off can be avoided. In this way, the reliability is improved.
It should be noted that the connection relation between the indoor unit body 1 and the connection support 3 is not limited. For example, the indoor unit body 1 and the connection support 3 may be fixedly connected to each other or may be slidingly connected to each other in such a manner that the indoor unit body 1 and the connection support 3 move relative to each other in longitudinal direction, which is not limited herein. When the indoor unit body 1 and the connection support 3 are fixedly connected to each other, at least part of the connection support 3 is always located outside the indoor unit body 1, to enable the outdoor unit body 2 to be spaced apart from the indoor unit body 1 in the longitudinal direction. When the indoor unit body 1 and the connection support 3 are relatively slidably connected to each other in the longitudinal direction, and the window air conditioner 100 is in a use configuration, at least part of the connection support 3 is located outside the indoor unit body 1, to enable the outdoor unit body 2 to be spaced apart from the indoor unit body 1 in the longitudinal direction. When the indoor unit body 1 and the connection support 3 are relatively slidably connected to each other in the longitudinal direction, and the window air conditioner 100 is in a mounting configuration, the connection support 3 may be stacked on a top portion of the indoor unit body 1, to enable the indoor unit component 1 to be adjacent to the outer unit component 2, or at least part of the connection support 3 is located outside the indoor unit body 1, to enable the indoor unit body 1 to be spaced apart from the outdoor unit body 2 in the longitudinal direction.
When the indoor unit body 1 and the connection support 3 are slidably connected to each other in such a manner that the indoor unit body 1 and the connection support 3 move relative to each other in the longitudinal direction, a relative longitudinal position of the outdoor unit body 2 and the indoor unit body 1 may be adjusted, which not only helps to reduce a longitudinal distance between the outdoor unit body 2 and the indoor unit body 1 for ease of packaging and transportation, but also allows the longitudinal distance between the outdoor unit body 2 and the indoor unit body 1 to match longitudinal dimension requirements of different windowsills.
In some embodiments, the connection support 3 and the indoor unit body 1 are slidable relatively to each other in an inward-outward direction, that is, the connection support 3 and the indoor unit body 1 are slidable relatively to each other in the longitudinal direction. At this time, as illustrated in
In another exemplary embodiment of the present disclosure, a longitudinal movement distance of the connection support 3 relative to the indoor unit body 1 between the first extreme position and the second extreme position may be about 400 mm, to ensure that the deformation of the pipeline assembly 103 cannot affect the function of the pipeline assembly 103, and thus to ensure operating reliability of the window air conditioner 100. Of course, the present disclosure is not limited to this, and the pipeline assembly 103 may also extends in other forms, such as a V-shape and an S-shape as illustrated in
In some embodiments, the outdoor unit body 2 is reciprocally rotatable about a pivot axis L between a first state (such as a state illustrated in
It should be noted that the expression “vertically arranged” described herein refers to a vertical or substantially vertical orientation, and the expression “transversely arranged” described herein refers to a horizontal or substantially horizontal orientation, which should be understood in a broad sense. In addition, it should be noted that “the outdoor unit body 2 is reciprocally rotatable about the pivot axis L between the first state and the second state” is intended to illustrate that the outdoor unit body 2 has an ability to switch between the above-mentioned two states through the rotation, but it is not limited to achieve the switching of the above-mentioned two states by driving the outdoor unit body 2 to rotate necessarily. For example, when it is necessary to switch the state of the outdoor unit body 2, it can be achieved by driving the outer unit component 102 to rotate or by driving the indoor unit component 101 to rotate, which fall within the protection scope of the present disclosure.
For example, when the window air conditioner 100 is in the use configuration (for example, as illustrated in
It can be understood that a vertical height position of the pivot axis L may be maintained unchanged whether the outdoor unit body 2 is in the first state or in the second state. When the outdoor unit body 2 is in the first state, the pivot axis L is located at the position at which a top portion of the outdoor unit body 2 is located. When the outdoor unit body 2 is in the second state, since the back plate of the outdoor unit body 2 is raised to the state of being transversely arranged, the pivot axis L is equivalent to being located at a position at which a bottom portion of the outdoor unit body 2 is located.
In addition, it should be noted that the back plate (i.e., the first back plate 21) of the outdoor unit body 2 refers to a structure of the outdoor unit body 2 at a side of the outdoor unit body 2 facing towards a wall at the window opening when the window air conditioner 100 is in the use configuration. For example, when the outdoor unit body 2 has a closed structure, the first back plate 21 may be a side wall surface of a casing of the outdoor unit body 2. For another example, when the outdoor unit body 2 has a semi-open structure, the first back plate 21 may also be a side wall surface of a condenser.
That is, it is roughly equivalent to: when the outdoor unit body 2 is in the first state, the outdoor unit body 2 as a whole is generally located at lower level than a horizontal plane where the pivot axis L is located; and when the outdoor unit body 2 is in the second state, the outdoor unit body 2 as a whole is generally located at higher level than the horizontal plane where the pivot axis L is located. For example, the outdoor unit body 2 may rotate upwardly with a bottom raised (in a counterclockwise direction illustrated in
Thus, when the outdoor unit body 2 changes from the first state into the second state, since the outdoor unit body 2 is raised relative to the pivot axis L as a whole, the outdoor unit body 2 can be easily pushed out of the window opening 200 from the indoor side to the outdoor side. Therefore, a difficulty of the mounting of the window air conditioner 100 is reduced. As a result, the mounting of the window air conditioner 100 is more labor-saving. That is, it is avoided that the operation of pushing the outdoor unit body 2 from the inside out by raising the window air conditioner 100 as a whole to enable the bottom wall of the outdoor unit body 2 to be located at higher level than a windowsill. As a result, the operation is more labor-saving. Moreover, since there is no need to raise the window air conditioner 100 as a whole and then push out the outdoor unit body 2, a risk of the whole machine tipping over and falling off towards the outdoor side, which is caused by a relatively high height of a center of gravity of the whole machine and a difficulty in controlling the whole machine when pushing the whole machine from the inside out, is avoided. Thus, safety of the mounting is improved.
For example, as illustrated in
For example, as illustrated in
In summary, as illustrated in
It can be understood that if the window air conditioner 100 constantly maintains the use configuration, then when the outdoor unit body 2 needs to be pushed outwards from the window opening 200, the window air conditioner 100 needs to be raised as a whole, which is laborious to operate. Moreover, if the window air conditioner 100 constantly maintains the use configuration, when the whole machine is raised to be pushed outwards, the center of gravity of the whole machine is relatively high because the indoor unit component 101 is also located at a relatively high level (for example, higher than a bottom edge of the window opening 200). In this case, there is a problem of the outdoor unit body 2 tipping over outwards, which is difficult to control and dangerous.
In the window air conditioner 100 according to some embodiments of the present disclosure, since the indoor unit component 101, in the mounting configuration, may still maintain to be located at the same level as in the use configuration, for example, at lower level than the bottom edge of the window opening 200, an installer can easily press against the indoor unit body 1 from a top of the indoor unit body 1 to avoid the problem of the outdoor unit body 2 tipping over and falling off outwards, which is easy to control and reduces a risk.
In some embodiments, as illustrated in
In the description of the present disclosure, it is to be understood that, the terms such as “longitudinal,” “transverse,” and “length” refer to the directions and location relations which are the directions and location relations shown in the drawings, and for describing the present disclosure and for describing in simple, and which are not intended to indicate or imply that the device or the elements are arranged to locate at the specific directions or are structured and performed in the specific directions, which could not to be understood to the limitation of the present disclosure.
In addition, the terms such as “first” and “second” are used herein for purposes of description and are not intended to indicate or imply relative importance, or to implicitly show the number of technical features indicated. Thus, a feature formed with “first” and “second” may comprise one or more this feature distinctly or implicitly. In the description of the present disclosure, the “plurality of” means two or more than two, unless specified otherwise.
In the present disclosure, unless specified or limited otherwise, the terms “mounted,” “connected,” “coupled” and “fixed” are understood broadly, such as fixed, detachable mountings, connections and couplings or integrated, and may be direct and via media indirect mountings, connections, and couplings, and also may be inner mountings, connections and couplings of two components or interaction relations between two components. For those skilled in the art, the specific meaning of the above-mentioned terms in the embodiments of the present disclosure can be understood according to specific circumstances.
In the present disclosure, unless specified or limited otherwise, the first feature is “on” or “under” the second feature refers to the first feature and the second feature may be direct or via media indirect contact. And, the first feature is “on,” “above,” “over” the second feature may refer to the first feature is right over the second feature or is diagonal above the second feature, or just refer to the horizontal height of the first feature is higher than the horizontal height of the second feature. The first feature is “below” or “under” the second feature may refer to that the first feature is right below the second feature or is diagonal under the second feature, or just refer to the horizontal height of the first feature is lower than the horizontal height of the second feature.
Reference throughout this specification to “an embodiment,” “some embodiments,” “an example,” “a specific example,” or “some examples” means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the present disclosure. The appearances of the above phrases in various places throughout this specification are not necessarily referring to the same embodiment or example of the present disclosure. Furthermore, the particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments or examples. In addition, different embodiments or examples and features of different embodiments or examples described in the specification may be combined by those skilled in the art without mutual contradiction.
Although embodiments of the present disclosure have been illustrated and described, it is conceivable for those of ordinary skill in the art that various changes, modifications, replacements, and variations can be made to these embodiments without departing from the principles and spirit of the present disclosure. The scope of the present disclosure shall be defined by the claims as appended and their equivalents.
Claims
1-12. (canceled)
13. A window air conditioner comprising:
- an outdoor unit component including an outdoor unit body;
- an indoor unit component rotatably connected to the outdoor unit component and including an indoor unit body;
- a transitional shielding member arranged at a rotational connection between the indoor unit component and the outdoor unit component, the transitional shielding member cooperating with the indoor unit component and the outdoor unit component to form a passage; and
- a pipeline assembly passing through the passage and connected to the indoor unit body and the outdoor unit body.
14. The window air conditioner according to claim 13, wherein:
- the transitional shielding member is movable relative to the indoor unit component and the outdoor unit component;
- the transitional shielding member participates in forming a first communication opening and a second communication opening, the passage being in communication with the indoor unit body via the first communication opening and in communication with the outdoor unit body via the second communication opening;
- the first communication opening and the second communication opening are configured to remain in an open state during a relative rotation of the indoor unit component and the outdoor unit component; and
- the pipeline assembly passes through the passage through the first communication opening and the second communication opening.
15. The window air conditioner according to claim 14, wherein the transitional shielding member includes a retractable shielding member connected to the indoor unit component and the outdoor unit component, and the retractable shielding member is configured to be deployed or retracted with the relative rotation of the indoor unit component and the outdoor unit component.
16. The window air conditioner according to claim 15, wherein:
- the indoor unit component includes a first shielding housing located at the rotational connection;
- the outdoor unit component includes a second shielding housing located at the rotational connection;
- the first shielding housing and the second shielding housing are arranged in a transverse direction and rotatably connected to each other; and
- at least one of the first shielding housing or the second shielding housing has an avoidance space configured to avoid the retractable shielding member.
17. The window air conditioner according to claim 14, wherein the transitional shielding member includes a shielding shell rotatable relative to the indoor unit component and the outdoor unit component.
18. The window air conditioner according to claim 17, wherein:
- the indoor unit component and the outdoor unit component are pivotally connected to each other by a hinge assembly and are rotatable relative to each other about a unique pivot axis extending in a transverse direction; and
- the shielding shell includes: a top shell extending in the transverse direction and configured to shield above the hinge assembly; and an end shell connected to an end of the top shell in the transverse direction, the end shell being rotatably and pivotally connected to the hinge assembly about the pivot axis.
19. The window air conditioner according to claim 18, wherein:
- the first communication opening is formed between an inner side edge of the top shell and the indoor unit component;
- the second communication opening is formed between an outer side edge of the top shell and the outdoor unit component;
- the indoor unit component includes a first flange configured to stop against an outer side of the inner side edge; and
- the outdoor unit component includes a second flange configured to stop against an inner side of the outer side edge.
20. The window air conditioner according to claim 19, wherein:
- the hinge assembly includes a first articulation member arranged at the indoor unit component and a second articulation member arranged at the outdoor unit component;
- the second articulation member is hinged to the first articulation member and configured to be reciprocally rotatable between a first angular position and a second angular position; and
- the second articulation member is configured to, when rotating to a third angular position between the first angular position and the second angular position in a process of rotating from the first angular position, be in contact with the outer side edge to push the shielding shell to rotate synchronously towards the second angular position.
21. The window air conditioner according to claim 20, wherein the second flange is configured to, when the second articulation member rotates to the third angular position in a process of rotating from the second angular position, be in contact with the outer side edge to pull the shielding shell to rotate synchronously with the second articulation member towards the first angular position for resetting.
22. The window air conditioner according to claim 13, wherein:
- the indoor unit component includes a first pipeline clamp;
- the outdoor unit component includes a second pipeline clamp; and
- the pipeline assembly is fit with the first pipeline clamp and the second pipeline clamp.
23. The window air conditioner according to claim 13, wherein:
- the indoor unit component includes a connection support configured to pass through a window opening, the connection support including an outer end extending to be pivotally connected to an upper inner end of the outdoor unit body, to enable the outdoor unit body to rotate about a pivot axis extending in a transverse direction and located at the upper inner end of the outdoor unit body; and
- an extending direction of the pipeline assembly in the connection support changes at least once.
24. The window air conditioner according to claim 23, wherein:
- the connection support and the indoor unit body are slidable relatively to each other in an inward-outward direction; and
- the pipeline assembly extends for a loop in a circumferential direction in the connection support.
Type: Application
Filed: Sep 23, 2022
Publication Date: Oct 30, 2025
Inventors: Zhisheng LEI (Wuhu), Chengli YANG (Wuhu), Yu LIU (Wuhu), Yongyi YANG (Wuhu)
Application Number: 18/861,653