Electric motor and inverter assembly
11552536 ยท 2023-01-10
Assignee
Inventors
- Tao Zhu (Shanghai, CN)
- Yanlin Li (Shanghai, CN)
- Xinhua Liu (Shanghai, CN)
- Takashi Shigematsu (Shanghai, CN)
- Heinz-Bernd Haiser (Shanghai, CN)
- Peter Ropertz (Shanghai, CN)
- Ralf Schmid (Shanghai, CN)
- Shi Deng (Shanghai, CN)
Cpc classification
Y02T10/64
GENERAL 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
B60Y2400/60
PERFORMING OPERATIONS; TRANSPORTING
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
H02K9/19
ELECTRICITY
International classification
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
H02K9/19
ELECTRICITY
Abstract
An electric motor and inverter assembly (100) used in an electric vehicle or a hybrid electric vehicle to drive the vehicle's wheels to rotate is disclosed. The electric motor and inverter assembly comprises: an electric motor (300), which includes a housing including a main shell (310), an end cover (320) and a connecting cover (330), wherein a cooling passage is formed in a wall of the housing such that coolant is able to flow in the cooling passage, and an end cover (320) and a connecting cover (330) are respectively connected to opposite ends of the main shell; and an inverter, which includes a housing (210) in which a power element and/or an electrical device is received, wherein the housing of the inverter contacts the connecting cover such that an interface is defined between the connecting cover and the housing of the inverter, and the coolant flowing through the cooling passage is able to contact the interface.
Claims
1. An electric motor and inverter assembly (100) used in an electric vehicle or a hybrid electric vehicle to drive the vehicle's wheels to rotate, said electric motor and inverter assembly (100) comprising: an electric motor (300), the electric motor including a housing, a cooling passage being formed in a wall of the housing such that coolant is able to flow in the cooling passage, the housing of the electric motor (300) including a main shell (310), and an end cover (320) and a connecting cover (330) which are connected to opposite ends of the main shell (310); and an inverter (200), the inverter (200) including a housing (210) in which a power element and/or an electrical device is received, wherein the housing (210) of the inverter (200) contacts the connecting cover (330) such that an interface is defined between the connecting cover (330) and the housing of the inverter (200), and the coolant flowing through the cooling passage is able to contact the interface, wherein the connecting cover (330) includes a groove (332) formed in a side of the connecting cover (330) that contacts the housing (210) of the inverter (200) at the interface, wherein the groove (332) extends and is elongated along the interface and is in fluid communication with the cooling passage, wherein mirror-symmetrical to said groove (332), a groove (212) is formed in the housing (210) of the inverter (200), and wherein the groove (332) of the connecting cover (330) and the groove (212) formed in the housing (210) face each other and follow a path along the interface.
2. The electric motor and inverter assembly (100) as claimed in claim 1, wherein after entering the housing of the electric motor (300), the coolant flows first through the connecting cover (300) and then through the main shell (310) and the end cover (320).
3. The electric motor and inverter assembly (100) as claimed in claim 2, wherein the main shell (310) is substantially hollow cylinder shaped, and a plurality of separated channels (311) are formed longitudinally in a cylindrical wall of the main shell (310) such that the cooling passage is partially defined by the plurality of separated channels (311).
4. The electric motor and inverter assembly (100) as claimed in claim 3, wherein a plurality of separated fins are provided in the channels (311) of the main shell (310).
5. The electric motor and inverter assembly (100) as claimed in claim 4, wherein the fins (311a) of the main shell (310) are elongated, each fin (311a) is longitudinally shorter than the main shell (310), and in each channel (311) of the main shell (310), the fins (311a) extends radially and outwardly from a sidewall of the channel (311) adjacent to the interior of the housing of the electric motor (300).
6. The electric motor and inverter assembly (100) as claimed in claim 5, wherein the fins (311a) extend to or not to a radially opposing sidewall of the channel (311).
7. The electric motor and inverter assembly (100) as claimed in claim 4, wherein a guide feature (311b) is additionally provided in the channel (311) of the main shell (310), and the guide feature (311b) is adjacent to the end cover (320) and/or the connecting cover (330) such that the coolant turns smooth when flowing to the end cover (320) and/or the connecting cover (330).
8. The electric motor and inverter assembly (100) as claimed in claim 2, wherein a plurality of circumferentially separated grooves (321) are formed in a side of the end cover (320) facing the main shell (310) and/or a plurality of circumferentially separated additional grooves are formed in a side of the connecting cover (330) facing the main shell (310), such that the cooling passage is partially defined by the plurality of circumferentially separated grooves (321) and/or the plurality of circumferentially separated additional grooves.
9. The electric motor and inverter assembly (100) as claimed in claim 1, wherein an output shaft (340) of the electric motor (300) extends through the end cover (320) such that the output shaft protrudes partially outwards.
10. The electric motor and inverter assembly (100) as claimed in claim 1, wherein the groove (332) of the connecting cover (330) is substantially U-shaped.
11. The electric motor and inverter assembly (100) as claimed in claim 1, wherein the assembly is configured such that the coolant is able to flow substantially over the entire longitudinal length of the main shell (310).
12. The electric motor and inverter assembly (100) as claimed in claim 1, wherein a power adapter (334) and a signal adapter (333) are provided in the housing of the electric motor (300), and electric wires electrically connecting the power adapter (334) and the signal adapter (333) to the power element and/or the electrical device of the inverter respectively are arranged within the housing (210) of the inverter (200) and the housing of the electric motor (300).
13. The electric motor and inverter assembly (100) as claimed in claim 1, wherein the groove (332) of the connecting cover (330) is elongated in a direction perpendicular a centerline of an output shaft (340) of the electric motor (300).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The preceding and other aspects of the present application will be well understood by the following description in combination with the attached drawings. It should be noted that although the drawings may be given in different ratios, they cannot be thought to affect understanding to the present application. In the drawings:
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DETAILED DESCRIPTION
(12) In the drawings of the present application, features of the same configuration or having a similar function are represented by the same reference numerals.
(13)
(14) As shown in
(15) It is understood by an ordinary person in the art that the motor shaft 340 of the electric motor 330 can be operatively coupled to a transmission device (not shown) such that the motor shaft's rotating speed can be lowered and thus the vehicle's wheels can be driven to rotate.
(16) Each of the main shell 310, the end cover 320 and the connecting cover 330 is formed with a coolant flowing channel therein such that after the main shell 310, the end cover 320 and the connecting cover 330 are assembled together, the respective coolant flowing channels are connected to each other to generate a cooling passage. An inlet 350 and an outlet 360 are formed in the housing of the electric motor 300. The inlet 350 and the outlet 360 are in fluid communication with the cooling passage of the electric motor 300 such that coolant (liquids) can be pumped to flow through the whole cooling passage of the electric motor 300 via the inlet 350 and discharge out via the outlet 360. The coolant can be cycled as such to result in a cooling effect.
(17) The inverter 200 comprises a housing 210 which is generally cubical. A power element and other electrical devices for controlling the electric motor are received in the housing 210. Opposite to the main shell 310, the inverter 200, for example its housing 210, is connected over an axial end side of the connecting cover 330. For example, both of them can be connected by bolts or any other suitable mechanical means.
(18) Further, as shown in
(19) It should be understood by the ordinary person in the art that in order to ensure sealing, a leak-proof structure such as a gasket can be clamped between the connecting cover 330 and the inverter 200.
(20) The side of the housing 210 of the inverter 200 tending to contact the end side 331 can be substantially planar.
(21) It should be understood by the ordinary person in the art that the channel between the inverter 200 and the connecting cover 330, through which the coolant can flow, is not limited to the U shape. Other shapes such as V or W are feasible as long as the channel can occupy the majority of projection area.
(22) A power adapter 334 and a signal adapter 333 are provided in the connecting cover 330. The power adapter 334 is used to connect to a direct current power source such as a power battery such that the electric motor 300 is energized via the inverter 200. The signal adapter 333 is used to connect to a central control unit of the vehicle so as to control the inverter 200 and/or the electric motor 300. The connecting cover 330 is provided with openings 332a and 333a which are in communication with the power adapter 334 and the signal adapter 333 respectively. In this way, when the electric motor 300 is assembled together with the inverter 200, electric wires can be used to connect the power adapter 334 and the signal adapter 333 to relevant joints of the inverter 200 respectively. Then, the connecting cover 330 can be connected to the inverter 200 as mentioned previously such that the electric wires can be held in a space between the inverter 200 and the connecting cover 330. In an optional embodiment, the relevant joints of the inverter 200 and the power adapter 334 and the signal adapter 333 can be designed in a manner of plug and socket. In this way, the electric wires can be dispensed with, the relevant joints can be directly connected to the adapters when the connecting cover 330 is connected to the inverter 200, such that assembling work can be simplified.
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(24) As explained already, the housing of the electric motor 300 is produced in a segmental manner and assembled. Therefore, the main shell 310 can be produced by extruding. Comparison with a housing of the electric motor 300 conventionally produced by casting, the cooling passage in the housing of the electric motor 300 according to the present application can be made longer. That is to say, more coolant per unit time can flow in the housing wall of the electric motor 300, resulting in a better cooling effect.
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(26) Take the main shell 310 and the end cover 320 for example. When the coolant flows to the groove 321 of the end cover 320 along the fins 311a in one channel 311, the coolant may turn by 180 degrees under attack, which may hinder the coolant to flow and thus negatively affect the cooling effect. In order to avoid such a hindering effect caused by sharp turning, an optional embodiment of the present application is illustrated by
(27) In the embodiments of the present application, the fins and/or the guide feature can be integrally formed in the main shell 310 or alternatively can be soldered or otherwise connected to the main shell 310 as independent element(s). It should be understood by the ordinary person in the art that similar fins can be applied in the grooves 321 of the end cover 320 and/or the grooves of the connecting cover 330 defining the coolant flowing channel, such that the area of contact between the coolant and them can be increased to improve the cooling effect. For instance, a plurality of circumferentially separated fins can be provided in the groove 321 shown in
(28) In the embodiment illustrated by
(29) Although in the already explained embodiments the inverter 200 is connected to the connecting cover 330 of the electric motor 300, it should be understood by the ordinary person in the art that the inverter 200 can be connected to any other suitable location of the electric motor 300, for example to an outer sidewall of the main shell 310, as long as a heat-transfer interface can be defined between the housing of the electric motor 300 and the housing of the inverter 200 to contact the coolant.
(30) Although some specific embodiments of the present application have been described here, they are given for illustrative purpose only and cannot be deemed to constrain the scope of the present application. Various replacements, alternations and modifications can be thought out without departing from the spirit and scope of the present application.