The present disclosure is directed to an electric transmission assembly, and is more particularly related to providing hydrodynamic bearings for the electric transmission assembly.
It is well known that automotive transmissions are generally used to route power from an internal combustion engine (ICE) to vehicle wheels, while adjusting a speed ratio between the wheels and the ICE to ensure that the ICE operates efficiently. As there is a growing demand to make vehicles more fuel efficient, some vehicles now utilize electric motors to supplement or replace the ICE.
Automotive transmissions typically contain a number of shafts that rotate relative to a fixed housing. In some arrangements, the shafts may be configured to rotate relative to one another. Bearings are utilized to permit relative rotation while minimizing any drag torque. The bearings are generally designed to transfer forces between components with relative rotation. It is well known to use radial bearings for transmitting any radial loads, and to use axial bearings or thrust bearings for transmitting any axial loads. Combination bearings are also known, and are generally configured to transmit or support both radial and axial loads.
Roller bearings, which include a rolling element supported between opposing rings, are also often used in automotive transmissions. The rolling elements are primarily configured to maintain rolling contact, as opposed to sliding contact, with the bearing rings. Bushings, which can also be used in automotive transmissions, are another type of bearing which utilize predominantly sliding contact and typically are formed from materials with a low coefficient of friction to minimize drag.
While these various bearing types are known, they also suffer from deficiencies. For example, electric static can build up during running and these types of bearings can be subject to electric currents passing through them. This typically causes damage to bearing surfaces and therefore causes the bearings to prematurely fail. One known solution for addressing the electrical current problem is to use insulation coatings, or other types of shunts to help prevent passage of current through the bearings. These solutions are typically labor intensive to install or expensive.
Accordingly, it would be desirable to provide an improved solution for addressing the electric current issues for bearings that are implemented in electric motor assemblies.
In one aspect, an improved electric transmission assembly is provided that includes a hydrodynamic bearing. The electric transmission assembly includes a stator arranged inside of an outer housing. A rotor is configured to be rotatably driven by the stator. The rotor can include a rotor shaft having a first gear configured to driveably engage with a differential. A hydrodynamic bearing is arranged between the rotor shaft and the outer housing. The hydrodynamic bearing is formed from a non-conductive material. Specifically, the hydrodynamic bearing can be formed from a polymeric or plastic material. In one aspect, the hydrodynamic bearing is formed from a non-metallic material.
The hydrodynamic bearing can include a first hydrodynamic bearing at a first axial end of the rotor, and a second hydrodynamic bearing at a second axial end of the rotor. The first hydrodynamic bearing can be configured to engage a central housing of the outer housing, and the second hydrodynamic bearing can be configured to engage with a first end cap of the outer housing. The hydrodynamic bearings can either be press-fit onto the relative housing components or can be fixedly connected via mating features to be rotationally locked or fixed to the stationary housing components.
The hydrodynamic bearing can include a radially extending flange defining a first bearing surface and an axially extending flange defining a second bearing surface. The radially extending flange and the axially extending flange can be integrally formed with each other. In another aspect, the radially extending flange and the axially extending flange can be formed separately from each other.
The hydrodynamic bearing can include an anti-rotation element configured to rotationally fix the hydrodynamic bearing to another component of the transmission, such as the outer housing.
The hydrodynamic bearing, in one aspect, a bearing surface on at least one of a radial bearing surface or an axial bearing surface having a profile including a flat section with groove sections on either end of the flat section. In another aspect, the hydrodynamic bearing can include a bearing surface on at least one of a radial bearing surface or an axial bearing surface having a profile comprising a flat section with ramped sections on either end of the flat section, and groove sections on respective ends of the ramped sections.
The differential can be configured to engage a first output shaft and a second output shaft, and the first output shaft and the second output shaft can each be configured to drive a vehicle wheel.
In one aspect, the rotor shaft includes a central cavity dimensioned to receive at least one of the first output shaft or the second output shaft therein.
The first gear can be configured to engage with a second gear connected to a countershaft, and the countershaft can include a third gear configured to engage with a fourth gear connected to the differential. The countershaft can be arranged offset from the rotor shaft and along a parallel axis to an axis of the rotor shaft. The countershaft can be arranged radially outward from the differential.
Additional embodiments are disclosed herein.
The foregoing Summary and the following Detailed Description will be better understood when read in conjunction with the appended drawings, which illustrate a preferred embodiment of the disclosure. In the drawings:
Certain terminology is used in the following description for convenience only and is not limiting. The words “front,” “rear,” “upper” and “lower” designate directions in the drawings to which reference is made. The words “inwardly” and “outwardly” refer to directions toward and away from the parts referenced in the drawings. “Axially” refers to a direction along the axis of a shaft. A reference to a list of items that are cited as “at least one of a, b, or c” (where a, b, and c represent the items being listed) means any single one of the items a, b, or c, or combinations thereof. The terminology includes the words specifically noted above, derivatives thereof and words of similar import.
As shown in
An electric motor is integrated with the transmission 10 and is configured to generate power. In one aspect, the electric motor includes a stator 18. The stator 18 can be fixed to another component of the transmission 10. The stator 18 can be fixed to an interior surface of one of the central housing 12, the first end cap 14, or the second end cap 16. In one aspect, the stator 18 is fixed to the central housing 12.
The electric motor also includes a rotor 20. The rotor 20 can be arranged radially inward or outward of the stator 18. The rotor 20 is generally configured or support to rotate. In one aspect, the rotor 20 is fixed to a rotor shaft 22. Although a separate rotor shaft 22 is shown in the Figures, one of ordinary skill in the art would understand that in other aspects, the rotor shaft 22 could be formed integrally with the rotor 20.
The rotor shaft 22 can include a central cavity, as described in further detail herein. A first end 22a of rotor shaft 22 is configured to be supported for rotation relative to the central housing 12 via at least one first bearing support. In one aspect, the first bearing support comprises a first hydrodynamic bearing 24. A second, opposite end 22b of the rotor shaft 22 is supported for rotation relative to the first end cap 14 via at least one second bearing support. The second bearing support can comprise a second hydrodynamic bearing 26.
In one aspect, the electric motor is generally provided at one axial end of the transmission 10. At another axial end of the transmission 10, a differential 28 can be provided. The differential 28 can be configured to divide or split power output to a first output shaft 30 and a second output shaft 32. The differential 28 is generally driven by the rotor shaft 22, through a series of connections or gears which are described in more detail herein. The first and second output shafts 30, 32 can be configured to transmit power or output to a respective wheel of the vehicle. The differential 28 can be a bevel gear differential, in one aspect. One of ordinary skill in the art would understand that alternative types of differentials can be used. In one example, either one of the output shafts 30, 32 may terminate with a constant velocity joint to connect to a half-shaft that connects to a wheel unit.
The differential 28 and the first and second output shafts 30, 32 are configured to be supported for rotation about the same axis, i.e. axis (X), as the rotor 20. The first output shaft 30 is configured to extend through the central cavity of the rotor shaft 22. The differential 28 can include a carrier 34 that provides a radially outer housing or component. Bearings 36 and 38 are provided between the carrier 34 and the outer housing 11, i.e. the carrier 12 and the second end cap 16. The first output shaft 30 is supported at a first end 30a by the differential 28 and at a second end 30b by bearing 40. Similarly, the second output shaft 32 is supported at a first end 32a by differential 28 and at a second end 32b by a bearing 42.
A countershaft 44 can be provided that is arranged inside of the outer housing 11 of the transmission 10. The countershaft 44 is arranged offset from the axis (X). An axis of the countershaft 44 is parallel to the axis (X). The countershaft 44 is rotatably supported by a pair of bearings 46 and 48 arranged on axially opposite ends of the countershaft 44. The countershaft 44 can be arranged radially outward from the differential 28. This arrangement provides an axially compact transmission 10.
In one aspect, a first gear 50 is connected to the rotor shaft 22. The first gear 50 can be formed integrally with the rotor shaft 22. In one aspect, the first gear 50 is attached to the first end 22a of the rotor shaft 22. The first gear 50 is configured to mesh, i.e. drivingly engage, with a second gear 52 which is connected to the countershaft 44. The second gear 52 can be formed integrally with the countershaft 44 in one aspect. A third gear 54 is connected to the countershaft 44. In one aspect, the third gear 54 is integrally formed into countershaft 44. The third gear 54 is configured to mesh with a fourth gear 56. In one aspect, the fourth gear 56 is connected to the carrier 34 of the differential 28. The fourth gear 56 could be formed directly on a radially outer surface of the carrier 34.
The rotor shaft 22, the countershaft 44, and the first, second, third, and fourth gears 50, 52, 54, and 54 are configured to driveably connect the rotor 20 to the differential 28. These components and the differential 28 driveably connect the rotor 20 to the first and second output shafts 30, 32.
As used in this disclosure, components are considered to be driveably connected if power is transmitted between them. As used in this disclosure, driveably connected components may directly interact or engage, or may indirectly interact or engage and be connected via intermediate components. Components may be selectively driveably connected by releasable power flow components such as clutches or brakes.
An outer radial surface 27a of the second hydrodynamic bearing 26 is configured to engage or interface with a radial support surface 62 of the first end cap 14. An inner radial surface 27b of the second hydrodynamic bearing 26 is configured to engage or interface with the radial surface 22c of the support shaft 22.
An outer axial surface 25c of the first hydrodynamic bearing 24 is configured to engage a corresponding axial end face 64 of the central housing 12. An inner axial surface 25d of the first hydrodynamic bearing 24 is configured to engage a corresponding axial end face 20a of the rotor 20.
An outer axial surface 27c of the second hydrodynamic bearing 26 is configured to engage a corresponding axial end face 66 of the first end cap 14. An inner axial surface 27d of the second hydrodynamic bearing 26 is configured to engage a corresponding axial end face 20b of the rotor 20.
Fluid, such as lubricating fluid, is directed or routed between the interfaces between the hydrodynamic bearings 24, 26 and the rotor 20 and the rotor shaft 22. Grooved surfaces, which are described in more detail herein, are provided on the surfaces of the hydrodynamic bearings 24, 26 facing or engaging the rotor 20 and the rotor shaft 22. In particular, the inner axial surface 25d and the inner radial surface 25b of the first hydrodynamic bearing 24, and the inner axial surface 27d and the inner radial surface 27b of the second hydrodynamic bearing 26 include hydrodynamic bearing surfaces that are generally configured to direct or route fluid, such as lubricating fluid. In one aspect, fluid can be supplied from an external cooled reservoir and/or pump system, or a recirculating cooled oil bath system utilizing the volume of oil in the transmission assembly.
Features on these surfaces distribute the fluid into a film in response to relative rotation. For example, the direction of relative rotation can be clockwise or counterclockwise based on the forward or reverse driving mode. In one aspect, the film separates the surfaces so that friction is minimized. Both axial and radial forces may be transmitted. Exemplary designs, features, bearing profiles, and other aspects of a hydrodynamic bearing are disclosed in U.S. patent application Ser. No. 16/807,882, filed on Mar. 3, 2020, which was filed by the Applicant. U.S. patent application Ser. No. 16/807,882, filed on Mar. 3, 2020, which was filed by the Applicant, is hereby incorporated by reference herein in its entirety.
In one aspect, the hydrodynamic bearings 24, 26 are fixed to the outer housing 11, such as the central housing 12, or the first end cap 14, and the hydrodynamic film may be formed between the hydrodynamic bearing 24, 26 and at least one of the rotor 20 or the rotor shaft 22. One of ordinary skill in the art would understand that in an alternative configuration or assembly, the hydrodynamic bearings may be fixed to the rotor 20 and/or the rotor shaft 22.
The hydrodynamic bearings can include anti-rotation elements, such as elements 129, 229, 429 shown in
During operation, shaft voltages and the current generated by the motor can be dissipated through conventional bearing rolling elements to the outer housing. This may result in arcing which degrades the tribological characteristics of the bearing surface and rolling elements, and degrades the material microstructure thereby causing premature failure of bearings. To address these issues, the first and second hydrodynamic bearings 24 and 26 may be formed from a non-conductive material, such as a polymeric material or plastic material, that is not affected or impacted by electrical potential. In one aspect, the non-conductive material can include high performance thermoplastics, engineering thermoplastics, or thermosetting plastics. Thus, the polymeric hydrodynamic bearings 24, 26 are effective at avoiding any issues related to electric static or discharge that can otherwise damage the bearings and cause premature failure of the bearings.
The hydrodynamic bearing disclosed herein can generally be configured to create a load-carrying oil film between support or opposing surfaces of the hydrodynamic bearing and an adjacent component, such as an interface with the rotor 20 and rotor shaft 22. During rotational operation, oil, or any other lubricating fluid, is fed into the contact between surfaces of the hydrodynamic bearing 24, 26 and the opposing surfaces of the rotor 20 and rotor shaft 22 to create a wedge-shaped thrust-load carrying oil film and also a wedge-shaped radial-load carrying oil film.
Various support surfaces of the hydrodynamic bearings 24, 26 can vary and include various profiles. As shown in
The radial bearing surface 125a of the hydrodynamic bearing 124 of
The hydrodynamic bearing 124 shown in
The hydrodynamic bearing 124 of
The radial bearing surfaces 225a, 225a′ can have a profile including a flat section 231a with groove sections 231b, 231c on opposite sides of the flat section 231a. The groove sections 231b, 231c each have a continuously curved profile or surface. This profile can repeat around a circumference of the radial bearing surfaces 225a, 225a′.
The hydrodynamic bearing 224 shown in
The hydrodynamic bearing 224 of
The radial bearing surface 325a can have a profile including a flat section 331a with groove sections 331b, 331c on opposite sides of the flat section 331a. The groove sections 331b, 331c have a continuously curved profile or surface, in one aspect. This profile can repeat around a circumference of the radial bearing surface 325a. The axial bearing surface 325b can include a profile having a flat section 333a with ramped sections 333b, 333c on opposite ends of the flat section 333a. Respective groove sections 333d, 333e are arranged on respective opposite ends of the ramped sections 333b, 333c. The ramped sections 333b, 333c can have a flat but angled surface or profile. The groove sections 333d, 333e can have a continuously curved surface or profile. The ramped sections 333b, 333c of the bearing surface 325b can be angled relative to the adjacent flat section 333a by an angle of 0.25 to 3 degrees.
The bearing surface features disclosed in any one of the Figures, such as
In one aspect, the hydrodynamic bearings disclosed herein are high speed bi-directional bearings, which may be either radial only, axial only, or combination radial and axial bearings. As used in this document, the term high speed means upwards of 15,000 rpm. The hydrodynamic bearings operate under the principle of providing wedge-shaped oil film that help support radial or axial loads in a desired direction based on the rotational direction and speed between the adjacent components supported by the hydrodynamic bearing.
In each of the embodiments disclosed herein, the hydrodynamic bearings including bearing surfaces with a specific groove geometry or profile. The bearing surfaces of each of the hydrodynamic bearings are oriented facing the rotor 20 and/or rotor shaft 22. The hydrodynamic bearings in each embodiment can either be press-fit onto one of the components of the outer housing 11, or can be locked into place with the components of the outer housing 11 via anti-rotation features.
The present disclosure is directed to an arrangement which prevents premature failure of bearings used in high speed E-motors from the passage of electric current through the bearings without the need for any insulation coatings or other shunt options which are otherwise required to prevent the passage of current through the bearing. The present disclosure also eliminates the need for high speed cage and rolling elements which are expensive and/or complex to fabricate. The present arrangement eliminates the need for high precision inner and outer raceways which are otherwise required for proper functioning of a rolling element bearing at high speeds. The present configuration also helps improve noise, vibration, and harshness (NVH) levels. By using hydrodynamic bearings that are formed from non-conductive materials, such as polymers or plastics, the present disclosure ensures that undesirable and damaging electrical current does not pass through the bearing elements.
Having thus described the present embodiments in detail, it is to be appreciated and will be apparent to those skilled in the art that many physical changes, only a few of which are exemplified in the detailed description of the disclosure, could be made without altering the inventive concepts and principles embodied therein.
It is also to be appreciated that numerous embodiments incorporating only part of the preferred embodiment are possible which do not alter, with respect to those parts, the inventive concepts and principles embodied therein.
The present embodiment and optional configurations are therefore to be considered in all respects as exemplary and/or illustrative and not restrictive, the scope of the disclosure being indicated by the appended claims rather than by the foregoing description, and all alternate embodiments and changes to this embodiment which come within the meaning and range of equivalency of said claims are therefore to be embraced therein.
This application claims priority to U.S. Provisional Application No. 63/064,436, which was filed on Aug. 12, 2020, and is incorporated herein by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
3033623 | Thomson | May 1962 | A |
5145265 | Flem | Sep 1992 | A |
5509738 | Haynes | Apr 1996 | A |
6307293 | Ichiyama | Oct 2001 | B1 |
6509668 | Berger | Jan 2003 | B2 |
6674213 | Berger | Jan 2004 | B2 |
7665954 | Ide | Feb 2010 | B2 |
7884511 | Mogi | Feb 2011 | B2 |
8128289 | Yamamoto | Mar 2012 | B2 |
9941771 | Garrard | Apr 2018 | B2 |
10093163 | Schmitt et al. | Oct 2018 | B2 |
10378641 | Nakano | Aug 2019 | B2 |
10823276 | Francis | Nov 2020 | B2 |
11054019 | Lamm | Jul 2021 | B2 |
11318835 | Lamm | May 2022 | B2 |
20020074880 | Tae Young | Jun 2002 | A1 |
20040163409 | Nakajima et al. | Aug 2004 | A1 |
20060147135 | Kim | Jul 2006 | A1 |
20070292060 | Kusaka et al. | Oct 2007 | A1 |
20120171017 | Norem et al. | Jul 2012 | A1 |
Number | Date | Country |
---|---|---|
2551800 | May 2003 | CN |
202165436 | Mar 2012 | CN |
202867577 | Apr 2013 | CN |
109578432 | Mar 2021 | CN |
107620768 | May 2021 | CN |
3830386 | Mar 1990 | DE |
20302174 | Oct 2004 | DE |
202011100921 | Oct 2012 | DE |
102011121935 | Jun 2013 | DE |
102012214850 | Mar 2014 | DE |
202019106330 | Apr 2021 | DE |
551550 | Jul 1993 | EP |
2803450 | Jul 2001 | FR |
H074380 | Jan 1995 | JP |
2001157405 | Jun 2001 | JP |
2003-322098 | Nov 2003 | JP |
2020514645 | May 2020 | JP |
WO-0135515 | May 2001 | WO |
WO-2004109105 | Dec 2004 | WO |
2012-062851 | May 2012 | WO |
WO-2013007136 | Jan 2013 | WO |
WO-2014139623 | Sep 2014 | WO |
WO-2020064489 | Apr 2020 | WO |
WO-2020064796 | Apr 2020 | WO |
Entry |
---|
CN 109578432 B1 translation (Year: 2019). |
CN 107620768 B1 translation (Year: 2019). |
CN 202867577 U1 translation (Year: 2019). |
CN 202165436 U1 translation (Year: 2019). |
DE 102012214850 A1 translation (Year: 2019). |
DE 202011100921 U1 translation (Year: 2020). |
DE 202019106330 U1 translation (Year: 2020). |
DE 3830386 A1 translation (Year: 2019). |
WO 2020064489 A1 translation (Year: 2020). |
EP 551550 A1 translation (Year: 2019). |
FR 2803450 A1 translation (Year: 2019). |
JP 2001157405 A1 translation (Year: 2001). |
CN 2551800 Y1 translation (Year: 2019). |
DE 102011121935 A1 translation (Year: 2019). |
JP 2020514645 A1 translation (Year: 2020). |
WO 2013007136 A1 translation (Year: 2014). |
WO 2014139623 A1 translation (Year: 2015). |
WO 2020064796 A1 translation (Year: 2020). |
U.S. Appl. No. 16/807,882, filed Mar. 3, 2020 (unpublished). |
Number | Date | Country | |
---|---|---|---|
20220048374 A1 | Feb 2022 | US |
Number | Date | Country | |
---|---|---|---|
63064436 | Aug 2020 | US |