Vehicle driveline component having a lubrication de-aerator
11519552 ยท 2022-12-06
Assignee
Inventors
Cpc classification
F16H57/0409
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/04
PERFORMING OPERATIONS; TRANSPORTING
F16H57/0406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M2013/0433
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/02052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N2210/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/02034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2001/001
PERFORMING OPERATIONS; TRANSPORTING
F16N7/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0457
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16N39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vehicle driveline component with a housing, a rotary power transmission system, a lubricant and a lubrication de-aerator. The housing defines a cavity and a sump. The rotary power transmission system is received in the cavity and includes a plurality of gears that are in meshing engagement. The lubricant is received in the sump and is employed to lubricate the rotary power transmission system. The lubrication de-aerator is received in the housing and has at least one matrix of de-aeration cells that extend between an upper surface and a lower surface. Each of the de-aeration cells has a cell inlet, which is formed through the upper surface, and a cell outlet that is formed through the lower surface. Each of the de-aeration cells tapers between its cell inlet and its cell outlet.
Claims
1. A vehicle driveline component comprising: a housing that defines a cavity and a sump, the housing having a plurality of internal surfaces; a rotary power transmission system received in the cavity, the rotary power transmission system including a plurality of gears that are in meshing engagement; a lubricant received in the sump, the lubricant being employed to lubricate the rotary power transmission system; and a lubrication de-aerator received in the housing at a location that receives lubricant slung from the rotary power transmission system, the lubrication de-aerator having at least one matrix of de-aeration cells that extend between an upper surface and a lower surface, each of the de-aeration cells having a cell inlet, which is formed through the upper surface, and a cell outlet that is formed through the lower surface, each of the de-aeration cells tapering between its cell inlet and its cell outlet.
2. The vehicle driveline component of claim 1, wherein the lubrication de-aerator has a plurality of matrices of de-aeration cells, wherein the matrices of de-aeration cells are spaced vertically from one another.
3. The vehicle driveline component of claim 2, wherein vertically adjacent matrices of de-aeration cells are offset from one another such the cell outlets of each pair of vertically adjacent matrices are not vertically in-line with one another.
4. The vehicle driveline component of claim 3, wherein each of the de-aeration cells has a longitudinal axis, and wherein each of the matrices are offset from one another such the cell inlets of each pair of vertically adjacent matrices are not vertically in-line with one another.
5. The vehicle driveline component of claim 1, wherein the vertically adjacent matrices of de-aeration cells are spaced apart by a plurality of legs, each of the legs having a first end, which is received into a leg aperture formed into a first one of the matrices of de-aeration cells, and second end that is received into an associated one of the de-aeration cells in a second one of the matrices of de-aeration cells.
6. The vehicle driveline component of claim 5, wherein the second end of each of the legs contacts an interior surface of an associated one of the de-aeration cells and wherein at least one drain channel is formed between the second end and the interior surface that permits the lubricant to drain around the second end to the cell outlet of the associated one of the de-aeration cells.
7. The vehicle driveline component of claim 1, wherein each of the de-aeration cells has a longitudinal axis, and wherein each of the de-aeration cells has a non-circular cross-sectional shape in a cross-section taken perpendicular to the longitudinal axis.
8. The vehicle driveline component of claim 7, wherein the non-circular cross-sectional shape is hexagonal.
9. The vehicle driveline component of claim 1, wherein at least one of the plurality of gears rotates through the lubricant in the sump during operation of the vehicle driveline component.
10. The vehicle driveline component of claim 1, further comprising an electric motor received in the housing, the electric motor having a motor output shaft, and wherein one of the plurality of gears is coupled to the motor output shaft for rotation therewith.
11. The vehicle driveline component of claim 1, wherein the rotary power transmission system includes a differential assembly.
12. A vehicle driveline component comprising: a housing defining a cavity and a sump; a rotary power transmission system received in the cavity, the rotary power transmission system including a plurality of gears that are in meshing engagement; a lubricant received in the sump, the lubricant being employed to lubricate the rotary power transmission system; and a lubrication de-aerator received in the cavity, the lubrication de-aerator having a plurality of matrices of de-aeration cells that are spaced vertically apart from one another, each matrix of de-aeration cells having a plurality of de-aeration cells that extend between an upper surface and a lower surface, each of the de-aeration cells having a cell inlet, which is formed through the upper surface, and a cell outlet that is formed through the lower surface, each of the de-aeration cells tapering between its cell inlet and its cell outlet; wherein vertically adjacent matrices of de-aeration cells are offset from one another such the cell outlets of each pair of vertically adjacent matrices are not vertically in-line with one another; wherein each of the de-aeration cells has a longitudinal axis, and wherein each of the matrices are offset from one another such the cell inlets of each pair of vertically adjacent matrices are not vertically in-line with one another; and wherein each of the de-aeration cells has a non-circular cross-sectional shape in a cross-section taken perpendicular to the longitudinal axis.
13. The vehicle driveline component of claim 12, wherein the vertically adjacent matrices of de-aeration cells are spaced apart by a plurality of legs, each of the legs having a first end, which is received into a leg aperture formed into a first one of the matrices of de-aeration cells, and second end that is received into an associated one of the de-aeration cells in a second one of the matrices of de-aeration cells.
14. The vehicle driveline component of claim 13, wherein the second end of each of the legs contacts an interior surface of an associated one of the de-aeration cells and wherein at least one drain channel is formed between the second end and the interior surface that permits the lubricant to drain around the second end to the cell outlet of the associated one of the de-aeration cells.
15. The vehicle driveline component of claim 12, wherein the non-circular cross-sectional shape is hexagonal.
16. The vehicle driveline component of claim 12, wherein at least one of the plurality of gears rotates through the lubricant in the sump during operation of the vehicle driveline component.
17. The vehicle driveline component of claim 12, further comprising an electric motor received in the housing, the electric motor having a motor output shaft, and wherein one of the plurality of gears is coupled to the motor output shaft for rotation therewith.
18. The vehicle driveline component of claim 12, wherein the rotary power transmission system includes a differential assembly.
Description
DRAWINGS
(1) The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present disclosure.
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(11) Corresponding reference numerals indicate corresponding parts throughout the several views of the drawings.
DETAILED DESCRIPTION
(12) With reference to
(13) With reference to
(14) A predetermined volume of the lubricant 16 can be disposed in the sump 26 in the housing 12. The output gear 30b can extend into the sump 26 such that the output gear 30b rotates through the lubricant 16 in the sump 26 during the operation of the vehicle driveline component 10. A shroud 50 can be disposed about the output gear 30b to limit the amount of the lubricant 16 in the sump 26 that is able to come into contact with the output gear 30b. Additionally or alternatively, a pump (not specifically shown) can be employed to draw lubricant 16 from the sump 26 and provide a supply of pressurized lubricant 16 that can be directed through the housing 12 to lubricate various components, such as bearings (not specifically shown) and gears, and/or to cool various components such as a stator 54 and a rotor 56 of the electric motor 36. It will be appreciated that the lubricant 16 that has been employed to lubricate and/or cool the various components of the vehicle driveline component 10 can be slung from a rotating component (e.g., the gears or the differential assembly 34 of the rotary power transmission system 14) and/or can drain onto an internal surface 22 of the housing 12 as the lubricant 16 is returned to the sump 26.
(15) The lubrication de-aerator 18 is received in the cavity 24 in the housing 12 and may optionally extend into the sump 26. The lubrication de-aerator 18 is disposed in a location that is configured to intercept the lubricant 16 that is being returned to the sump 26. In this regard, the lubrication de-aerator 18 is positioned to intercept the lubricant 16 that is slung from the rotary power transmission system 14 before the slung lubricant 16 reaches and co-mingles with lubricant 16 that is disposed in the sump 26.
(16) With reference to
(17) In the example provided, the lubrication de-aerator 18 has a plurality of matrices 60 of de-aeration cells 62 that are spaced vertically from one another. Preferably, the lubrication de-aerator 18 is configured so that vertically adjacent matrices 60 are offset from one another such the cell outlets 72 of each pair of vertically adjacent matrices 60 are not vertically in-line with one another. Also preferably, each of the matrices 60 are offset from one another such the cell inlets 70 of each pair of vertically adjacent matrices 60 are not vertically in-line with one another.
(18) With reference to
(19) With reference to
(20) Lubricant passing out of the cell outlets 72 of the de-aeration cells 62 in the first matrix 60 can be directed to either the upper surface 66 of a vertically adjacent matrix 60 or to the sump 26 in the absence of a vertically adjacent matrix 60. It will be appreciated that the lubricant 16 will spread over the upper surface 66 of the vertically adjacent matrix 60, as well as over the tapered surfaces of the de-aeration cells 62 in the vertically adjacent matrix 60 before exiting through the cell outlets 72 of the de-aeration cells 62 in the vertically adjacent matrix 60. Accordingly, each vertically adjacent matrix 60 of de-aeration cells 62 can repeat the spreading of the draining lubricant 16 and increase the time needed to return the draining lubricant 16 to the sump 26 to thereby further facilitate the de-entrainment of air from the draining lubricant 16.
(21) It will be appreciated that the lubrication de-aerator 18 significantly slows or stills the lubricant 16 in the sump 26 as well as shields the lubricant 16 in the sump 26 from lubricant that is slung or surges from the rotating components of the rotary power transmission system 14.
(22) The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.