Vane-cell pump provided with a deep-drawn metal-sheet pot
A pump, for instance for conveying lubricating oil to an internal combustion engine, in particular to multi-stroke vane-cell pump in which a rotatable group comprises a rotor whose vanes are movable at least in a radial direction, a stroke profile, vane heads tightly sliding along said profile and two lateral axial lids in the form of lateral plates or casing walls, the stroke profile and the first axial lateral plate being embodied in the form of a metal sheet pot.
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The present invention relates to a pump, e.g., for conveying lubricating oil to an internal combustion engine, in particular a multi-stroke vane-cell pump in which a rotatable group includes a rotor having vanes that are movable at least in a radial direction, a stroke profile along which the vane heads slide tightly and two axial lateral lids in the form of lateral plates or casing walls.
Such pumps are known. Their lateral plates have axial inlet openings and outlet openings which must be separated by sealing devices or the like according to their pressure areas, for example, and therefore result in a great overall axial length in such vane-cell pumps. The components of the known rotatable groups such as lateral plates made of sintered steel and contour profile rings of solid steel or sintered steel are also accordingly designed with thick walls and thus require a great radial space as well as a great axial space.
The object of the present invention is thus to provide a pump which does not have these disadvantages.
This object is achieved by a pump, e.g., for conveying lubricating oil to an internal combustion engine, in particular a multi-stroke vane-cell pump in which the rotatable group has a rotor having vanes that are movable at least in a radial direction, a stroke profile along which the vane heads slide tightly and two axial lateral lids such as lateral plates or casing walls, the stroke profile and a first axial lateral plate being formed by a sheet metal pot. The sheet metal pot is preferably manufacturable by deep drawing. In addition, a pump in which a second axial lateral plate is formed by a sheet metal lid is also preferred. A pump according to the present invention is characterized in that the sheet metal lid has an embossed shoulder having an outside profile in the shape of the stroke profile. This has the advantage that after insertion into the sheet metal pot, the sheet metal lid covers the rounded edges of the sheet metal pot formed by the deep-drawing operation and thus creates a narrow sealing gap within the rotatable group. According to the present invention, the sheet metal lid may be manufactured by precision blanking or fine-edge blanking.
A pump according to the present invention is characterized in that the intake openings are formed by radial openings in the sheet metal pot. This has the advantage that the rotatable group has a narrow design because the suction channel may be situated around the sheet metal pot radially and need not be situated axially on the opposite side of the pressure channel.
A pump in which the outlet openings are formed by axial openings (pressure pockets) and optionally the at least one radial opening in the sheet metal pot is preferred. According to the present invention, the radial outlet opening is closable by a temperature switching valve or a pressure switching valve and thus establishes a switchable delivery area. This has the advantage that the pump delivers pressurized oil to both delivery areas as a function of the temperature-dependent or pressure-dependent lubricating oil demand for the internal combustion engine, or it conveys pressurized oil to only one delivery area, the second delivery area also going along without a pressure buildup, possibly resulting in a substantial power-saving effect.
A pump according to the present invention is characterized in that the temperature switching valve has an excess stroke spring. This has the advantage that after the radial outlet opening is sealed by the temperature switching valve and if there is no further expansion of a thermal expansion element due to an increase in temperature of the lubricating oil, the expansion element is able to execute an additional expansion movement against the excess stroke spring without any deformation or destruction.
In a preferred pump, the sheet metal pot of the rotatable group and possibly the temperature switching valve or pressure switching valve are integrated into a plastic casing. The plastic casing is preferably finished by injection molding and therefore does not require any reworking. The advantage here is that a rotatable group encapsulated in sheet metal is integrated into a plastic casing, making it possible to utilize the advantages of the two types of materials.
Another pump according to the present invention is characterized in that the axial outlet opening of the switchable conveyor area is closable by a reed nonreturn valve. The reed nonreturn valve has the same shape as the stroke profile curvature. The reed nonreturn valve is also mounted on a journal made of plastic in the plastic casing. The reed nonreturn valve is also protected from overstrain by a stroke stop in the plastic casing. This design of the reed nonreturn valve has the advantage of being very inexpensive while also being integrated into the pump in a neutral manner in terms of space.
A pump according to the present invention is characterized in that the sheet metal not has a notched or impressed cold start ring, which guides the vanes outward according to the stroke profile beneath the vanes in a cold operating state and steers against the stroke profile. In addition, a pump in which the rotor has grooves or indentations to receive the cold start ring is also preferred. In another preferred pump, the sheet metal lid has a notched or impressed cold start ring.
A pump according to the present invention is characterized in that the sheet metal lid has apparent pressure pockets impressed in it, i.e., pressure pockets without through-openings which produce only an axial pressure surface compensation for the rotor in the pressure area.
In another preferred pump, the radial outlet opening(s) of the switchable delivery area open(s) into a channel opening directly by a short path into the intake area of the second nonswitchable delivery area. This has the advantage that low flow losses and a favorable channel guidance result in a low-energy pressureless circulation in the switchable delivery area.
The present invention will now be described in greater detail on the basis of the figures.
In
During assembly, sheet metal lid 40 is pushed onto sheet metal pot 1 (see
-
- 1. The axial tolerances of the pot depth may be eliminated if the attachment of lid 40 is performed in a path-controlled procedure.
- 2. In the transition from the stroke profile to the sheet metal flange, a radius 50 (see
FIG. 3 ), which would be harmful for the volumetrics of the rotatable group, is formed on sheet metal pot 1 by the deep-drawing operation. In positioning shoulder 44 of lid 40, radius 50 is removed from the function area of the rotatable group. One advantage of the encapsulated rotatable group is that all important profiles for the control times are integrated and the positioning of the complete rotatable group in plastic casing 11 allows greater tolerances.
Axial and radial openings are provided in the pressure area of the switched stage. The openings in the radial direction with the temperature switching valve or a pressure switching valve are used for pressureless circulation. In doing so, the oil is flushed back out of the pressure side and into the intake space for intake of the next suction stage. The thus obtained channel guidance yields only minor flow losses due to deflection.
The great advantages of this pump design having corresponding radial and axial openings include the reduction in the required space as well as the cost savings.
Claims
1-20. (canceled)
21. A pump comprising:
- a rotor having vanes movable at least radially, the vanes having vane heads, the vanes and rotor defining a rotatable group;
- a sheet metal pot, the sheet metal pot defining a stroke profile, the vane heads sliding tightly along the stroke profile, and the sheet metal pot also forming a first axial lateral plate for the rotatable group; and
- an axial lateral lid for the rotatable group opposite the first axial lateral plate.
22. The pump as recited in claim 21 wherein the sheet metal pot a deep drawn metal pot.
23. The pump as recited in claim 21 wherein the axial lateral lid is a second axial lateral plate formed by a sheet metal.
24. The pump as recited in claim 23 wherein the axial lateral lid has an impressed shoulder with an outside profile in the shape of the stroke profile.
25. The pump as recited in claim 23 wherein the axial lateral lid is a precision blanked or fine-edge blanked lateral lid.
26. The pump as recited in claim 21 wherein the sheet metal pot includes radial intake openings.
27. The pump as recited in claim 21 wherein the sheet metal pot includes outlet openings, the outlet openings including axial openings.
28. The pump as recited in claim 21 wherein the outlet openings include at least one radial opening in the sheet metal pot.
29. The pump as recited in claim 28 further comprising a temperature switching valve or pressure switching valve, the radial outlet opening being sealable by the temperature switching valve or the pressure switching valve so as to establish a switchable conveyor area.
30. The pump as recited in claim 29 wherein the temperature switching valve has an excess stroke spring.
31. The pump as recited in claim 29 further comprising a plastic casing, the sheet metal pot and the temperature switching valve or the pressure switching valve being integrated into the plastic casing.
32. The pump as recited in claim 21 further comprising a plastic casing, the sheet metal pot being integrated into the plastic casing.
33. The pump as recited in claim 32 wherein the plastic casing is an injection molding.
34. The pump as recited in claim 29 further comprising a reed nonreturn valve, an axial outlet opening of the switchable conveyor area being closable by the reed nonreturn valve.
35. The pump as recited in claim 34 wherein the reed nonreturn valve has the shape of the stroke profile curvature.
36. The pump as recited in claim 34 wherein the reed nonreturn valve is mounted on a plastic journal.
37. The pump as recited in claim 34 further comprising a stroke end stop for the reed nonreturn valve, the stroke end stop being in a plastic casing.
38. The pump as recited in claim 21 wherein the sheet metal pot has a notched or impressed cold start ring.
39. The pump as recited in claim 38 wherein the rotor has grooves or depressions to receive the cold start ring.
40. The pump as recited in claim 38 wherein the axial lateral lid has a notched or impressed cold start ring.
41. The pump as recited in claim 21 wherein the axial lateral lid has impressed pressure pockets.
42. The pump as recited in claim 29 wherein the radial outlet opening of the switchable conveyor area opens into a channel, the channel opening directly via a path into an intake area of a second nonswitchable conveyor area.
43. The pump as recited in claim 21 wherein the pump includes an intake and an outlet for lubricating oil of an internal combustion engine.
44. The pump as recited in claim 21 wherein the pump is a multi-stroke vane-cell pump.
Type: Application
Filed: May 15, 2004
Publication Date: Jun 28, 2007
Applicant: LuK Automobiltechnik GmbH & Co. KG (Hueckeswagen)
Inventor: Heiko Schulz-Andres (Hueckeswagen)
Application Number: 10/557,513
International Classification: F01C 1/00 (20060101);