CA2116900A1 - Electric vehicle motor - Google Patents

Electric vehicle motor

Info

Publication number
CA2116900A1
CA2116900A1 CA002116900A CA2116900A CA2116900A1 CA 2116900 A1 CA2116900 A1 CA 2116900A1 CA 002116900 A CA002116900 A CA 002116900A CA 2116900 A CA2116900 A CA 2116900A CA 2116900 A1 CA2116900 A1 CA 2116900A1
Authority
CA
Canada
Prior art keywords
rotor
stator
motor
casing
core
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
CA002116900A
Other languages
French (fr)
Inventor
Carlo C. Di Pietro
Sian S. Lie
Nagwa Elksabgy
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Teco Westinghouse Motor Co
Original Assignee
Westinghouse Motor Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Westinghouse Motor Co filed Critical Westinghouse Motor Co
Priority to CA002116900A priority Critical patent/CA2116900A1/en
Publication of CA2116900A1 publication Critical patent/CA2116900A1/en
Abandoned legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/19Arrangements for cooling or ventilating for machines with closed casing and closed-circuit cooling using a liquid cooling medium, e.g. oil
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/64Electric machine technologies in electromobility

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Motor Or Generator Cooling System (AREA)

Abstract

An electric motor for an electrically powered vehicle provides the power necessary for rotating a plurality of vehicle wheels. The motor is constructed of light weight and corrosion resistant metals and includes a cooling system for supplying cooling oil to the rotor and stator core and stator windings such that high speed operation of larger electric motors for electric cars and buses is achievable.

Description

1 58,301 ELECTRIC VEHICLE MOTOR

FIELD OF THE lNv~ lON
The present invention relates generally to motors for electrically powered vehicles, such as an electric car.
More particularly, this invention relates to a light weight and corrosion resistant electric motor having an efficient oil cooling system such that the motor is capable of highly efficient operation over a wide range of speeds.
BACKGROUND OF THE lNv~ lON
Interest in electric vehicles has grown markedly in the past few decades due to air quality concerns and uncertain petroleum imports. Variable torque and speed control are the essential requirements for power systems in electric vehicles.
Several types of electric motors have been used to provide vehicle power requirements. Early traction motors were exclusively dc motors. More recently, advanced ac drive systems have been applied in vehicle power systems using induction motors. These electric vehicles require motors which are small in size, light weight, and inexpensive with high constant power and efficiency.
In view of these requirements, the motor components, primarily the rotor and stator core and the stator windings, are subjected to high temperatures and substantial thermal stresses. Thus, an efficient motor cooling system is necessary to obviate burning of the motor components and to improve the overall electrical and mechanical performance of the motor.
2 58,301 Various design efforts have focused on the development of an electric vehicle having a plurality of smaller electric motors wherein an individual motor is directly coupled to an individual wheel in order to reduce the necessary power requirements for each motor. One such electric vehicle motor is disclosed in U.S. Patent No.
5,111,090 -- Otake et al. Otake discloses an oil cooling system for an electric motor which is directly coupled to a single wheel of the vehicle wherein oil is provided from an oil reservoir within the bottom of the motor casing and is pumped upward via an oil path outside of the casing and back into the casing to nozzles located radially outward and directly above the top of coil. The nozzles spray oil directly against the top of the coil and the falling oil is guided into contact with lower portions of the stator core is cooled.
Notwithstanding any advances in the development of smaller electric motors which are individually connected to each wheel of an electric vehicle, there remains a need for light weight and highly efficient electric motors to replace the gas combustion engine and to make electric powered cars capable of maintaining the speeds of gas powered automobiles.
The present invention provides an electric motor which satisfies this need.
SUMMARY OF THE lNV~ lON
An electric motor for an electrically powered vehicle includes a motor casing, a cylindrical rotor core and a rotor shaft extending through the core and rotatably supported by the motor casing. The motor further includes a stator core having a plurality of stator slots and a plurality of windings disposed therein. A motor in accordance with the invention further includes a cooling system for providing a flow of cooling oil onto the rotor and stator components to dissipate the generated heat therefrom and prevent burning of the motor components. The rotor shaft of an electric motor is mechanically coupled to the vehicle drive shaft and provides the power necessary to rotate a plurality of vehicle 2~1~90~
3 58,301 wheels coupled to the drive shaft. The motor is light weight and corrosion resistant and is capable of providing the power necessary to operate larger vehicles, such as electrically powered passenger cars having 100 hp output and buses having 200 hp output.
BRIEF DESCRIPTION OF THE DRAWINGS
Fig. 1 shows an exploded view of one embodiment of an electric motor in accordance with the present invention.
Fig. 2 shows a longitudinal cross-section of an electric motor in accordance an embodiment of the present invention.
Fig. 3a shows a lateral cross-section of an electric motor in accordance the embodiment shown in Fig.2 taken along the lines 3-3.
15Fig. 3b shows a cut-away of one adjoining pair of the rotor and stator slots shown in FIG. 3a.
Fig. 4a shows a longitudinal cross-section of an electric motor in accordance with a further embodiment of the present invention.
20Fig. 4b shows a cut-away of a rotor slot shown in Fig. 4a.
Fig. 5 shows a longitudinal cross-section of a vehicle drive system in accordance with the present invention.

25Figs. 1 and 2 show an electric vehicle motor 10 in accordance with the present invention. The motor includes a hollow rotor shaft 12 having two end pieces wherein the shaft is rotatably supported by casing 14. Cylindrical rotor core 16 is fixed to the shaft 12 and stator core 18 is fixed to the casing 14 and disposed around the outer circumference of the rotor core such that a gap is formed between the inner surface of the stator core and the outer surface of the rotor core in a known manner. Stator core 18 has a plurality of stator slots 20 and a plurality of windings 22 disposed in the stator slots 20. End bells 23, 24 are mechanically affixed to the ends of the motor casing for securing the motor components within the casing. The end bells 23, 24 are fixed to the 2~169 0~
4 58,301 casing ends by a thixotropic seal in a known manner such that O-ring seals are not necessary. Motor 10 further includes cable assembly 25 for providing a supply of electrical power in a known manner.
In order to minimize the adverse effects of the high temperatures on the stator and rotor core, these motor components are provided with cooling oil. Cooling oil 27 is supplied under pressure from a cooling oil supply (not shown), and enters the casing 14 through oil inlet adapter 26. Oil flows into channel 28 in the casing, the channel preferably extending longitudinally along the length of the top of the casing. Oil flows along channel 28 and into end bell channels 29, 30 in end bells 23, 24 respectively.
Oil spray nozzle retainers 32, 34 are mechanically affixed to end bells 23, 24 respectively such that the oil spray nozzle retainers are in flow communication with the cooling oil 27 flowing through end bell channels 29, 30. Each oil spray nozzle retainer 32, 34 contains a plurality of nozzles 36 disposed therein for spraying cooling oil 27 onto the motor components. In a preferred embodiment, oil spray nozzle retainers 32, 34 are ring-shaped such that rotor shaft 12 extends through the retainers. Thus, the rotor and stator cores 16, 18 and the oil spray nozzle retainers 32, 34 all have a coincidental central longitudinal axis 35.
In a preferred embodiment, nine nozzles 36 are equally spaced circumferentially around each of the oil spray nozzle retainer rings. These nine nozzles are positioned at an angle relative to the central longitudinal axis 35 to spray cooling oil directly onto the longitudinal ends of the stator core 18 and windings 22. Thus, cooling oil is evenly sprayed around the entire 360 degrees of the outer ends of the stator core and windings. Heat from the longitudinal center of these components will dissipate toward the cooler ends such that the entire stator is cooled efficiently. Two additional nozzles 36 per each retainer ring are positioned to spray cooling oil directly onto the longitudinal ends of the rotor core 16 for cooling the rotor core in a similar manner to that described 2~16~0~
58,301 for the stator core. In a preferred embodiment, nozzles 36 spray cooling oil as a mist having a cone shape, as shown in Fig. 2, for distributing oil to a maximum surface area of the stator and rotor ends. Excess cooling oil is collected in reservoir 39 and pumped out of the motor for filtering and reuse.
Cooling oil 27 can also be supplied under pressure through a central aperture 40 which is disposed around the circumference of the casing 14 where the stator core 18 is fixed to the casing, as shown in Fig. 2. Referring to Fig.
3a, casing grooves 42 are cut into and extend longitudinally along the length of an inner surface 43 of the casing 14. A
plurality of casing grooves 42 are disposed around the circumference of inner surface 43. Stator grooves 44 are cut into and extend longitudinally along the length of an outer surface 45 of the stator core 18. A plurality of stator grooves 44 are disposed around the circumference of outer surface 45. It should be noted that the outer surface 45 of the stator core is fixed to the inner surface 43 of the casing, however, these two surfaces are shown as separated in Fig. 3a for clarity. Casing grooves 42 and stator grooves 44 are alternatingly positioned around the circumference of inner surface 43 and outer surface 45 respectively, such that a casing groove is adjacent a corresponding stator groove.
Referring again to Fig. 2, cooling oil 27 flows from channel 28, into aperture 40 and around the circumference of the outer surface of the stator core, and along the length of casing grooves 42 and stator grooves 44 such that cooling oil is distributed evenly over the outer surface 45 of the stator core. Thus, oil is provided directly for cooling around the entire circumference and along the entire length of the stator core. Cooling oil that flows over the longitudinal ends of the stator core flows onto the windings 22 to cool the wlndings.
Depending on the application and the size of the motor, the oil spray nozzle retainer arrangement discussed above can be used in combination with the longitudinal groove 6 58,301 cooling arrangement just discussed. ThUs, the present invention provides an efficient cooling system for electric car motors, i.e those capable of producing about 100 hp, as well as longer and larger motors, such as those for an electrically powered bus capable of 200 hP or higher, where the temperatures within the rotor and stator cores are at the highest levels. For smaller motors, where temperatures within the rotor and stator core are less extreme, either the oil spray nozzle retainer arrangement or the longitudinal groove arrangement can be used independently to provide adequate cooling of the motor components.
Referring once again to Figs. 1 and 2, a portion of the cooling oil sprayed by nozzles 36 of the first and second oil spray nozzle retainers 32, 34 is also distributed on ball bearings 50 disposed on the rotor shaft 12. Thus, the present invention also provides effective lubrication of the ball bearings. A high temperature carbon-graphite seal 51 prevents oil leakage out of end bell 23 at the drive end 52 of the motor. Resolver rotor 53 and resolver stator 54 are also constructed to seal the non-drive end 55 of the motor at end bell 24 to prevent leakage of oil.
In a preferred embodiment, casing 12 comprises magnesium which is extruded to form the casing shape. Also in a preferred embodiment, end bells 23, 24 comprise a magnesium alloy, preferably comprising about 90% magnesium.
In a most preferred embodiment, end bells 23, 24 comprise the magnesium alloy sold commercially as Magnesium AZ9lD by Northern Diecast of Harbor Springs, Michigan. Thus, the present invention provides an electric motor with significantly high horse-power which is light in weight and highly corrosion resistant.
In a preferred embodiment, rotor core 16 and stator core 18 are formed of a plurality of thin, insulated sheets of metal, or laminations, stacked and pressed together. 5 Preferably, these laminations comprise a silicon steel alloy.
As shown in Figs. 3a and 3b, rotor core 16 has a plurality of rotor slots 60 located around the periphery of 21~6900 7 58,301 the rotor core proximate the outer surface. Stator core 18 also has a plurality of stator slots 20 which open onto the inner surface of the annular stator core. As set forth above, electrical windings 22 are disposed in the stator slots 20.
In order to provide a path for the flow of electricity through the rotor, a conducting metal 62 is provided to fill the rotor slots 60. Preferably, conducting metal 62 comprises copper or aluminum, with copper being most preferred. Rotor slots 60 can be filled by a known die cast process, in which molten metal is cast into the rotor slots.
However, due to the high melting point of copper, the temperature experienced by the rotor laminations at the rotor slots during the die cast process may be greater than 1150F.
The adverse effects of the die casting process on the rotor laminations include degradation of the steel alloy laminations caused by the relatively high temperature necessary to maintain the conducting metal in a molten state, oxidation, and over-heating of the rotor core resulting in damage to the insulation between the stacked laminations. In order to protect the rotor laminations from the adverse - effects of the die cast process, this invention provides that a rotor slot coating 64 is deposited onto the surface of the rotor slots 60, prior to die casting. Such a coating is chosen to have a high dielectric strength, low heat conductivity, high resistance to the action of chemicals and high strength. Since rotor slot coating 64 has a high dielectric strength, the coating provides an insulating layer between the conducting metal in the rotor slots and the rotor core laminations.
A stator slot coating 66 of similar characteristics is likewise deposited onto the surface of the stator slots 20.
Such a coating has a high dielectric strength and provides a layer of insulation between the stator core laminations and the conducting metal in the windings of the stator slots.
Preferably, stator slot coating 66 is the same as rotor slot coating 64.

211690~
-8 58,301 In a preferred embodiment, rotor slot coating 64 and stator slot coating 66 both comprise a ceramic-based material. For the present invention, the phrase ceramic-based materials refers to materials with a matrix having ceramic material as its principal component. The ceramic material may be silicon or germanium, with silicon being the preferred ceramic material. However, the present invention is not intended to be limited in this manner and any available ceramic materials which possess the above described characteristics are within the scope of the present invention.
In a preferred embodiment, rotor slot coating 64 and stator slot coating 66 comprise silicon and aluminum.
The value of the dielectric strength for this coating is about 300V/mils. In a most preferred embodiment, the rotor and stator slot coatings comprise about 94.5 percent silicon and about 5.5 percent aluminum. This composition has a melting point of about 2903F, which is the lowest melting point for a composition of silicon and aluminum. Since the melting point of this composition of silicon and aluminum is well in excess of the temperatures experienced during a copper die cast process, this coating provides the desired protection for the rotor and/or stator core laminations. In another embodiment of the present invention, rotor slot coating 64 and stator slot coating 66 comprise a composition of silicon, aluminum and between 2 to 3 percent titanium.
A further embodiment of the present invention is shown in Figs. 4a and 4b, wherein cooling oil is supplied within the rotor core 16. Cooling oil 27 enters the motor under pressure through passage 70 in manifold 72 mounted on the non-drive end of the motor. Manifold 72 distributes the cooling oil radially about the outer surface of the rotor shaft 12. Oil flows axially along an annular rotor channel 74 formed in the rotor shaft. Oil subsequently flows along a plurality of radial passages 76 formed between an end of the rotor core and resistance ring 78 affixed to the rotor core.
Radial passages 76 are provided such that one radial passage is in flow communication with a corresponding one of the rotor 2l~6son 9 58,301 slots 60. Referring to Fig. 4b, rotor slots 60 further comprise axial rotor slot channels 80 such that the rotor slot channels are in flow communication with radial passages 76.
Oil flows axially along the rotor slot channels to cool the conducting metal 62 disposed in the rotor slots. Oil then flows out of the rotor slot channels, into a plurality of corresponding radial passages 82 formed between the other end of the rotor core and resistance ring 84 affixed to the rotor core, and into the hollow center of the rotor shaft 12. Oil flowing through rotor shaft cools the shaft tube and ball bearings 88 and flows out of the manifold through outlet 90 where it can be filtered and reused.
A vehicle drive system including an electric motor in accordance with the present invention is shown in Fig. 5.
Rotor shaft 12 is rotatably coupled to drive shaft 100 housed in gear box casing 102. Drive shaft 100 is coupled to rotor shaft 12 by a splined coupling 104 which is commonly known in the art. Drive shaft 100 actuates gear mechanism 106 which, in turn, actuates gear mechanism 108 for operating differential 110 in a known manner. Differential 110 is mechanically coupled to axles 112, 114 for rotating the axles which, in turn, rotate the vehicle wheels in a known manner.
Although particular embodiments of the present invention have been described and illustrated herein, it is recognized that modifications and variations may readily occur to those skilled in the art. Consequently, it is intended that the claims be intended to cover such modifications and equivalents.

Claims (21)

1. An oil-cooled electric motor for a vehicle, comprising:
a motor casing having first and second casing ends;
a rotor having a cylindrical rotor core and a rotor shaft extending through said rotor core, said rotor shaft rotatably supported by said motor casing;
a stator core having a plurality of stator slots and a plurality of windings disposed in said stator slots, said stator core disposed around said rotor, said stator core having first and second stator ends; and a first oil spray nozzle retainer disposed proximate said first stator end and a second oil spray nozzle retainer disposed proximate said second stator end, each said first and second oil spray nozzle retainers having a plurality of nozzles disposed therein, said nozzles in flow communication with a supply of cooling oil for spraying cooling oil onto said first and second stator ends.
2. The electric vehicle motor of claim 1, further comprising a channel disposed in said casing, said channel disposed between and in flow communication with the supply of cooling oil and said nozzles, said channel for receiving the cooling oil into said casing and delivering the cooling oil to said nozzles.
3. The electric vehicle motor of claim 2, further comprising first and second end bells for enclosing said rotor and said stator core within said casing, said first end bell mechanically affixed to said first casing end and said first oil spray nozzle retainer mechanically affixed to said first end bell, said second end bell mechanically affixed to said second casing end and said second oil spray nozzle retainer mechanically affixed to said second end bell, said channel disposed longitudinally along the top of said casing and further down each said first and second end bells and into flow communication with each said first and second oil spray nozzle retainers.
4. The electric vehicle motor of claim 1, said motor having a motor longitudinal central axis, said first oil spray nozzle retainer being a circular ring and having a first longitudinal central axis, said second oil spray nozzle retainer being a circular ring and having a second longitudinal central axis, said first and second longitudinal central axis coincidental with said motor longitudinal central axis, said nozzles of said first and second oil spray nozzle retainers disposed around said motor longitudinal central axis for spraying cooling oil evenly around said first and second stator ends.
5. The electric vehicle motor of claim 4, each said first and second oil spray nozzle retainers having nine stator nozzles and two rotor nozzles, said stator nozzles disposed evenly around the circumference of said first and second oil spray nozzle retainers and positioned to spray cooling oil at an angle relative to said motor longitudinal central axis, said rotor nozzles positioned to spray cooling oil substantially parallel to said motor longitudinal central axis.
6. The electric vehicle motor of claim 5, wherein each said nozzle sprays cooling oil as a mist having a cone shape.
7. The electric vehicle motor of claim 1, said rotor shaft having first and second shaft ends, wherein said first shaft end extends through said first oil spray nozzle retainer and said second shaft end extends through said second oil spray nozzle retainer.
8. The electric vehicle motor of claim 1, said rotor shaft having first and second shaft ends, further comprising first and second ball bearings, said first shaft end extending through said first ball bearing and said second shaft end extending through said second ball bearing, wherein said nozzles spray cooling oil onto said first and second ball bearings.
9. The electric vehicle motor of claim 1, wherein said rotor core has an inner and outer rotor surface, said rotor core further having a plurality of rotor slots disposed around the periphery of said rotor core proximate said outer rotor surface, each said rotor slot having a rotor slot surface, said rotor having a conducting metal disposed in each said rotor slot, said rotor further having a rotor slot coating deposited onto said rotor slot surface of each said rotor slot, said coating disposed between said conducting metal and said rotor slot surface.
10. The motor of claim 9, wherein said rotor slot coating comprises a ceramic-based material.
11. The motor of claim 10, wherein the principal component of said ceramic-based material is selected from the group consisting of silicon and germanium.
12. The motor of claim 9, wherein said conducting metal is die cast into said rotor slots.
13. The motor of claim 12, wherein said conducting metal is copper.
14. The motor of claim 12, wherein said conducting metal is aluminum.
15. An electric motor for a vehicle, comprising:
a motor casing, said motor casing having first and second casing ends;
a rotor having a cylindrical rotor core and a rotor shaft extending through said rotor core, said rotor shaft rotatably supported by said motor casing;
a stator core having a plurality of stator slots and a plurality of windings disposed in said slots, said stator core disposed around said rotor; and first and second end bells for enclosing said rotor and said stator core within said casing, said first end bell mechanically affixed to said first casing end, said second end bell mechanically affixed to said second casing end, said rotor shaft extending through said first and second end bells, said first and second end bells comprising a magnesium alloy.
16. The electric vehicle motor of claim 15, wherein said motor casing comprises magnesium.
17. An oil-cooled electric motor for a vehicle, comprising:
a motor casing having a circumferential inner casing surface;
a rotor having a cylindrical rotor core and a rotor shaft extending through said rotor core, said rotor shaft rotatably supported by said motor casing; and a cylindrical stator core having a plurality of stator slots and a plurality of windings disposed in said stator slots, said stator core disposed around said rotor, said stator core having a stator outer surface affixed to said inner casing surface;
said motor casing further having a circumferential channel disposed around said inner casing surface and in flow communication with a supply of cooling oil, said motor casing further having a plurality of casing grooves cut into and extending longitudinally along said inner casing surface, said casing grooves disposed around the circumference of said inner casing surface and in flow communication with said channel; and said stator core having a plurality of stator grooves cut into and extending along said stator outer surface, said stator grooves disposed around the circumference of said stator outer surface and in flow communication with said channel, wherein cooling oil flows from said channel and into said casing grooves and said stator grooves.
18. The electric motor of claim 17, wherein said casing grooves and said stator grooves are alternatingly positioned around said inner casing surface and said stator outer surface respectively, such that one of said casing grooves is circumferentially adjacent one of said stator grooves.
19. An oil-cooled electric motor for a vehicle, comprising:
a motor casing having a first end;
a rotor having a cylindrical rotor core and a rotor shaft extending through said rotor core, said rotor core having first and second core ends and an outer rotor surface, said rotor further having a plurality of rotor slots disposed around the periphery of said rotor core proximate said outer rotor surface, each said rotor slot having a conducting metal disposed therein and further having an axial channel, said rotor shaft comprising a hollow tube rotatably supported by said motor casing, said hollow tube having an outer surface and an annular rotor channel disposed longitudinally along said outer surface;
a cylindrical stator core having a plurality of stator slots and a plurality of windings disposed in said stator slots, said stator core disposed around said rotor;

a manifold mechanically affixed to said first end, said rotor shaft extending into said manifold, said manifold having an inlet in flow communication with a supply of cooling oil and a manifold passage for supplying the cooling oil to said rotor channel; and said rotor core further having a plurality of radial passages, each said radial passage in flow communication with said rotor channel, one of each said radial passages in flow communication with said axial channel of one of said rotor slots, wherein cooling oil flows along said rotor channel and said radial passages and into said axial channel of said rotor slots for contacting said conducting metal.
20. An electric vehicle drive system, comprising:
a motor casing;
a rotor having a cylindrical rotor core and a rotor shaft extending through said rotor core, said rotor shaft rotatably supported by said motor casing;
a stator core having a plurality of stator slots and a plurality of windings disposed in said slots, said stator core disposed around said rotor;
cooling means for supplying a flow of cooling oil onto said stator coil;
a drive shaft rotatably coupled to said rotor shaft;
a differential mechanically coupled to said drive shaft and further coupled to an axle for rotating a plurality of vehicle wheels.
21. The electric vehicle drive system of claim 20, said stator core having first and second ends, wherein said cooling means comprises a first and second oil spray nozzle retainer, each having a plurality of nozzles disposed therein, said rotor shaft extending through said first and second oil spray nozzle retainers, said first oil spray nozzle retainer disposed proximate said first end and said second oil spray nozzle retainer disposed proximate said second end, wherein said nozzles spray cooling oil onto said first and second ends.
CA002116900A 1994-03-03 1994-03-03 Electric vehicle motor Abandoned CA2116900A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CA002116900A CA2116900A1 (en) 1994-03-03 1994-03-03 Electric vehicle motor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CA002116900A CA2116900A1 (en) 1994-03-03 1994-03-03 Electric vehicle motor

Publications (1)

Publication Number Publication Date
CA2116900A1 true CA2116900A1 (en) 1995-09-04

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ID=4153008

Family Applications (1)

Application Number Title Priority Date Filing Date
CA002116900A Abandoned CA2116900A1 (en) 1994-03-03 1994-03-03 Electric vehicle motor

Country Status (1)

Country Link
CA (1) CA2116900A1 (en)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2401730A (en) * 2003-04-19 2004-11-17 Linde Ag Rotor shaft with fluid coolant passages for an electrical machine; a drive axle containing said machine.
EP2264870A3 (en) * 2009-06-17 2013-12-25 Deere & Company System for cooling an electrical machine
EP2242164A4 (en) * 2008-08-22 2016-06-08 Aisin Aw Co Rotating electric machine
WO2019201667A1 (en) * 2018-04-20 2019-10-24 Renault S.A.S Device for cooling an electric machine and the electric machine comprising such a device
DE102019208034A1 (en) * 2019-06-03 2020-12-03 Zf Friedrichshafen Ag Electromotive gear device
CN112701856A (en) * 2020-12-25 2021-04-23 奇瑞汽车股份有限公司 Oil-cooled motor cooling system
WO2023072445A1 (en) * 2021-10-28 2023-05-04 Audi Ag Coolant supply system for an electrically operated vehicle axle

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2401730A (en) * 2003-04-19 2004-11-17 Linde Ag Rotor shaft with fluid coolant passages for an electrical machine; a drive axle containing said machine.
GB2401730A9 (en) * 2003-04-19 2005-10-17 Linde Ag Rotor shaft with fluid coolent passages for an electrical machine a drive axle containing said machine
GB2401730B (en) * 2003-04-19 2006-04-12 Linde Ag Drive axle with two electric machines with improved cooling
EP2242164A4 (en) * 2008-08-22 2016-06-08 Aisin Aw Co Rotating electric machine
EP2264870A3 (en) * 2009-06-17 2013-12-25 Deere & Company System for cooling an electrical machine
WO2019201667A1 (en) * 2018-04-20 2019-10-24 Renault S.A.S Device for cooling an electric machine and the electric machine comprising such a device
FR3080506A1 (en) * 2018-04-20 2019-10-25 Renault S.A.S DEVICE FOR COOLING ELECTRIC MACHINE AND ELECTRIC MACHINE COMPRISING SUCH A DEVICE
US12081107B2 (en) 2018-04-20 2024-09-03 Ampere S.A.S. Device for cooling an electric machine and the electric machine comprising such a device
US12034358B2 (en) 2019-06-03 2024-07-09 Zf Friedrichshafen Ag Electromotive transmission device
DE102019208034B4 (en) 2019-06-03 2022-08-18 Zf Friedrichshafen Ag Electromotive transmission device
DE102019208034A1 (en) * 2019-06-03 2020-12-03 Zf Friedrichshafen Ag Electromotive gear device
CN112701856A (en) * 2020-12-25 2021-04-23 奇瑞汽车股份有限公司 Oil-cooled motor cooling system
US12424907B2 (en) 2020-12-25 2025-09-23 Chery Automobile Co., Ltd. Oil-cooled motor cooling system, and vehicle
WO2023072445A1 (en) * 2021-10-28 2023-05-04 Audi Ag Coolant supply system for an electrically operated vehicle axle
CN118140389A (en) * 2021-10-28 2024-06-04 奥迪股份公司 Coolant supply system for electrically operated axles
CN118140389B (en) * 2021-10-28 2025-02-28 奥迪股份公司 Coolant supply system for electrically operated axles
US12249898B2 (en) 2021-10-28 2025-03-11 Audi Ag Coolant supply system for an electrically operated vehicle axle

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FZDE Discontinued