Motor unit

The motor unit's dual independent refrigerant flow paths and housing design address the cooling capacity imbalance by reducing pressure loss and increasing refrigerant supply, thereby improving cooling performance.

JP7845384B2Active Publication Date: 2026-04-14TOYOTA JIDOSHA KK
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
TOYOTA JIDOSHA KK
Filing Date
2024-01-18
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

The cooling capacity in the vicinity of the discharge flow path is lower than in the supply flow path in the first refrigerant system of a motor unit, leading to a significant difference in cooling performance.

Method used

The motor unit is configured with a first refrigerant system that includes two independent refrigerant flow paths connecting the supply and discharge flow paths, with the first length in the circumferential direction being longer than the second, and a housing design that facilitates easy formation of axial and circumferential flow paths.

Benefits of technology

This configuration reduces pressure loss, increases refrigerant supply, and narrows the cooling capacity difference between the supply and discharge flow paths, enhancing overall cooling performance.

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Abstract

To provide a technique that can improve cooling performance of a motor unit.SOLUTION: A motor unit comprises a motor extending along a central axis, a housing that houses the motor, and a flow path, provided on the housing, which is configured to flow coolants in a circumferential direction of the housing. The flow path comprises: a supply flow path to which coolants are supplied; an ejection flow path from which the coolants are ejected, whose position is different from the position of the supply flow path in the circumferential direction of the housing; a first coolant system provided on a first range extending from the supply flow path to the ejection flow path, toward one side in the circumferential direction; and a second coolant system provided on a second range extending from the supply flow path to the ejection flow path, toward the other side in the circumferential direction. The first coolant system comprises a first coolant flow path through which the supply flow path is connected to the ejection flow path, and a second coolant flow path, formed independently from the first coolant flow path, through which the supply flow path is connected to the ejection flow path.SELECTED DRAWING: Figure 4
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Description

Technical Field

[0001] The technology disclosed in this specification relates to a motor unit.

Background Art

[0002] Patent Document 1 discloses a motor unit including a motor extending along a central axis, a housing that houses the motor, and a flow path provided in the housing and configured to allow a refrigerant to flow. The flow path includes a supply flow path to which the refrigerant is supplied, a discharge flow path from which the refrigerant is discharged and whose position in the circumferential direction of the housing is different from that of the supply flow path, a first refrigerant system provided in a first range extending from the supply flow path toward the discharge flow path on one side in the circumferential direction, and a second refrigerant system provided in a second range extending from the supply flow path toward the discharge flow path on the other side in the circumferential direction.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In the motor unit, in the first refrigerant system, the cooling capacity in the vicinity of the discharge flow path is lower than the cooling capacity in the vicinity of the supply flow path. In the first refrigerant system, it is desired to reduce the difference between the cooling capacity in the vicinity of the supply flow path and the cooling capacity in the vicinity of the discharge flow path.

[0005] This specification provides a technology capable of improving the cooling performance of a motor unit.

Means for Solving the Problems

[0006] In a first aspect of this technology, the motor unit may include a motor extending along a central axis, a housing housing the motor, and a flow path provided in the housing and configured to allow a refrigerant to flow in the circumferential direction of the housing. The flow path may include a supply flow path to which the refrigerant is supplied, a discharge flow path to which the refrigerant is discharged and which is located at a different position in the circumferential direction from the supply flow path, a first refrigerant system provided in a first range extending from the supply flow path toward one side in the circumferential direction to the discharge flow path, and a second refrigerant system provided in a second range extending from the supply flow path toward the other side in the circumferential direction to the discharge flow path. The first refrigerant system may include a first refrigerant flow path connecting the supply flow path and the discharge flow path, and a second refrigerant flow path connecting the supply flow path and the discharge flow path independently of the first refrigerant flow path.

[0007] With the above configuration, pressure loss in the first refrigerant system can be reduced compared to a configuration in which the first refrigerant system has only one independent refrigerant flow path. Therefore, the amount of refrigerant supplied to the first refrigerant system can be increased. Consequently, the difference between the cooling capacity near the supply flow path and the cooling capacity near the discharge flow path in the first refrigerant system can be reduced. As a result, the cooling performance of the motor unit can be improved.

[0008] In a second embodiment, in the first embodiment, the first length in the circumferential direction of the first range may be longer than the second length in the circumferential direction of the second range. In other words, the first length, which is the length of the first range along the circumferential direction, may be longer than the second length, which is the length of the second range along the circumferential direction.

[0009] When the first length is longer than the second length, the difference between the cooling capacity near the supply channel and the cooling capacity near the discharge channel in the first refrigerant system becomes larger than the difference between the cooling capacity near the supply channel and the cooling capacity near the discharge channel in the second refrigerant system. With the above configuration, the amount of refrigerant supplied to the first refrigerant system can be increased, so the difference in cooling capacity in the first refrigerant system, which has a relatively large difference in cooling capacity, can be reduced.

[0010] In a third embodiment, in the first or second embodiment, the first refrigerant flow path and the second refrigerant flow path may have a plurality of axial flow paths extending in the axial direction of the housing and at least one circumferential flow path extending in the circumferential direction. The plurality of axial flow paths in the first refrigerant flow path and the second refrigerant flow path may be connected in series by the at least one circumferential flow path.

[0011] A possible configuration is in which the first refrigerant flow path and the second refrigerant flow path have a plurality of flow paths extending in the circumferential direction of the housing and at least one flow path extending in the axial direction. With the above configuration, the first refrigerant flow path and the second refrigerant flow path can be formed more easily compared to a configuration in which the plurality of flow paths extending in the circumferential direction of the housing in the first refrigerant flow path and the second refrigerant flow path are connected in a series by at least one flow path extending in the axial direction.

[0012] In a fourth embodiment, the housing may include, in the third embodiment, a cylindrical central housing, a first cover connected to one end of the central housing in the axial direction, and a second cover connected to the other end of the central housing in the axial direction. The plurality of axial channels are provided in the central housing, and the at least one circumferential channel may be provided in either the first cover or the second cover.

[0013] With the above configuration, the first and second refrigerant flow paths can be easily formed compared to a configuration in which the housing is composed of two members.

[0014] In the fifth embodiment, in the fourth embodiment, all of the plurality of axial flow paths may be located at the same position in the radial direction. The at least one circumferential flow path may have a first circumferential flow path connecting two adjacent axial flow paths and a second circumferential flow path connecting two axial flow paths located on either side of the two axial flow paths. In other words, all of the plurality of axial flow paths may be located at positions equal to the central axis of the cylindrical central housing. The at least one circumferential flow path may have a first circumferential flow path connecting two adjacent axial flow paths, and a second circumferential flow path connecting two axial flow paths located on either side of the two adjacent axial flow paths.

[0015] According to the above configuration, it is possible to easily form a plurality of axial flow paths as compared with a configuration in which each of the plurality of axial flow paths is provided at a different position in the radial direction.

[0016] In a sixth aspect, in the fourth or fifth aspect, in the first cover and the second cover, the first circumferential flow path and the second circumferential flow path may be at least partially adjacent to each other in the radial direction.

[0017] According to the above configuration, it is possible to easily form a plurality of circumferential flow paths as compared with a configuration in which the first circumferential flow path and the second circumferential flow path are at least partially adjacent to each other in the axial direction.

[0018] In a seventh aspect, in any one of the first to sixth aspects, the second refrigerant system may include a third refrigerant flow path connecting the supply flow path and the discharge flow path, and a fourth refrigerant flow path independent of the third refrigerant flow path and connecting the supply flow path and the discharge flow path.

[0019] According to the above configuration, it is possible to reduce the pressure loss of the entire motor unit. Therefore, the cooling capacity of the motor unit can be improved.

Brief Description of the Drawings

[0020] [Figure 1] It is a schematic diagram of the drive device 2. [Figure 2] It is a rear view of the front cover 22 of the housing 12. [Figure 3] It is a front view of the rear cover 24 of the housing 12. [Figure 4] It is a schematic diagram of the refrigerant flow path in the housing 12. [Figure 5] It is a schematic diagram of the refrigerant flow path according to the first modification.

Embodiments for Carrying Out the Invention

[0021] (Example) Referring to FIGS. 1 to 4, the drive device 2 will be described. The drive device 2 is mounted on an electric vehicle or the like. Note that the front-rear direction, left-right direction, and up-down direction in FIGS. 1 to 3 are provided for easy understanding of the description and do not define the actual directions. Also, hereinafter, based on the direction of viewing the drive device 2 from the rear, the "clockwise direction" and the "counterclockwise direction" will be described.

[0022] As shown in FIG. 1, the drive device 2 includes a motor unit 10 and a gear unit (not shown). The gear unit is provided in front of the motor unit 10. The motor unit 10 includes a housing 12 and a motor 14.

[0023] The housing 12 includes a central housing 20, a front cover 22, and a rear cover 24. The central housing 20 has a cylindrical shape. The central housing 20 extends along the direction of axis A. Axis A is the central axis of the motor 14. Both the front and rear ends of the central housing 20 are open. A plurality of axial flow paths 20A communicating with the central housing 20 are formed in the central housing 20. The plurality of axial flow paths 20A extend along the direction of axis A.

[0024] As shown in FIG. 2, the front cover 22 includes a supply flow path 30 having a refrigerant supply port 30A, a discharge flow path 32 having a refrigerant discharge port 32A, a plurality of first inner flow paths 34A to 34F, and a plurality of first outer flow paths 36A to 36F. Hereinafter, each of the plurality of first inner flow paths 34A to 34F and the plurality of first outer flow paths 36A to 36F may be collectively referred to as the "first inner flow path 34" and the "first outer flow path 36". The first inner flow paths 34 are arranged along the circumferential direction. The first inner flow paths 34 extend along the circumferential direction. The front end portions of the axial flow paths 20A of the central housing 20 are connected to both ends of each of the first inner flow paths 34 in the circumferential direction. That is, the first inner flow path 34 connects two adjacent axial flow paths 20A in the circumferential direction.

[0025] The first outer channels 36 are arranged along the circumferential direction. The first outer channels 36 comprise a first connecting channel 38 and two first radial channels 40. For clarity, the reference numerals for the first connecting channel 38 and the two first radial channels 40 in the first outer channels 36B to 36F have been omitted from the illustration. Each of the multiple first outer channels 36A to 36F corresponds to each of the multiple first inner channels 34A to 34F. The first connecting channel 38 is located radially outward from the first inner channel 34 and extends along the circumferential direction. The clockwise end of the first connecting channel 38 is located more clockwise than the clockwise end of the first inner channel 34. The counterclockwise end of the first connecting channel 38 is located more counterclockwise than the counterclockwise end of the first inner channel 34. One of the two first radial channels 40 extends radially inward from the counterclockwise end of the first connecting channel 38, and the other extends radially inward from the clockwise end of the first connecting channel 38. In the radial direction, the positions of the radially inward ends of the two first radial channels 40 are the same as the positions of the first inner channel 34. The radially inward ends of the two first radial channels 40 are connected to the axial channels 20A of the central housing 20. That is, the first outer channel 36 connects the two axial channels 20A located on either side of the two axial channels 20A connected by the first inner channel 34.

[0026] The supply channel 30 is located in the center of the first inner channel 34A and the first outer channel 36A in the circumferential direction. The supply channel 30 connects the refrigerant supply port 30A with the first inner channel 34A and the first outer channel 36A. The discharge channel 32 is located in the center of the first inner channel 34F and the first outer channel 36F in the circumferential direction. The discharge channel 32 connects the refrigerant discharge port 32A with the first inner channel 34F and the first outer channel 36F.

[0027] As shown in Figure 3, the rear cover 24 is provided with a plurality of second inner channels 54A to 54F and a plurality of second outer channels 56A to 56F. In the following, the plurality of second inner channels 54A to 54F and the plurality of second outer channels 56A to 56F may be collectively referred to as "second inner channels 54" and "second outer channels 56," respectively. The second inner channels 54 are arranged along the circumferential direction. The second inner channels 54 extend along the circumferential direction. The rear end of the axial channel 20A of the central housing 20 is connected to each of the circumferential ends of the second inner channels 54. That is, the second inner channels 54 connect two axial channels 20A that are adjacent to each other in the circumferential direction.

[0028] The second outer channels 56 are arranged along the circumferential direction. The second outer channels 56 comprise a second connecting channel 58 and two second radial channels 60. For clarity, the reference numerals for the second connecting channels 58 and the two second radial channels 60 of the second outer channels 56B to 56F have been omitted from the illustration. Each of the multiple second outer channels 56A to 56F corresponds to each of the multiple second inner channels 54A to 54F. The second connecting channel 58 is located radially outward from the second inner channels 54 and extends along the circumferential direction. The clockwise end of the second connecting channel 58 is located more clockwise than the clockwise end of the second inner channel 54. The counterclockwise end of the second connecting channel 58 is located more counterclockwise than the counterclockwise end of the second inner channel 54. One of the two second radial channels 60 extends radially inward from the counterclockwise end of the second connecting channel 58, and the other extends radially inward from the clockwise end of the second connecting channel 58. In the radial direction, the positions of the radially inward ends of the two second radial channels 60 are the same as the positions of the second inner channel 54. The radially inward ends of the two second radial channels 60 are connected to the axial channels 20A of the central housing 20. That is, the second outer channel 56 connects the two axial channels 20A located on either side of the two axial channels 20A connected by the second inner channel 54.

[0029] As shown in Figure 1, the motor 14 extends along the central axis A. The motor 14 is housed within the housing 12. The motor 14 comprises a motor shaft 70, a rotor 72, and a stator 74. The motor shaft 70 extends along the direction of axis A. The motor shaft 70 is rotatably supported by bearings on the front cover 22 and rear cover 24 of the housing 12. The rotor 72 is fixed to the motor shaft 70. The stator 74 is fixed to the inner wall of the central housing 20 of the housing 12 by shrink fitting or the like.

[0030] A high-voltage current flows through the coil (not shown) of the stator 74. As a result, the stator 74 generates heat. To cool the stator 74, a coolant flows through the passages inside the housing 12.

[0031] (Flow path within housing 12) The flow paths within the housing 12 will be explained with reference to Figures 2 to 4. Figure 4 is an exploded view of the flow paths within the housing 12. Note that in Figure 4, for ease of viewing, the left-right position of the first inner flow path 34 and the left-right position of the first connecting flow path 38 of the first outer flow path 36 are offset. Also, the left-right position of the second inner flow path 54 and the left-right position of the second connecting flow path 58 of the second outer flow path 56 are offset.

[0032] As shown in Figure 4, the flow path within the housing 12 includes a supply flow path 30, a discharge flow path 32, a first refrigerant system 80, and a second refrigerant system 82. The first refrigerant system 80 is provided in a first range R1 extending from the supply flow path 30 to the discharge flow path 32 in a counterclockwise direction circumferentially (upward in Figure 4). The second refrigerant system 82 is provided in a second range R2 extending from the supply flow path 30 to the discharge flow path 32 in a clockwise direction circumferentially (downward in Figure 4). The first length L1 in the circumferential direction of the first range R1 is longer than the second length L2 in the circumferential direction of the second range R2.

[0033] The first refrigerant system 80 comprises a first refrigerant flow path 90 and a second refrigerant flow path 92. The first refrigerant flow path 90 and the second refrigerant flow path 92 connect to the supply flow path 30 and the discharge flow path 32, respectively. In Figure 4, thin arrows indicate the direction of refrigerant flow in the first refrigerant flow path 90, and thick arrows indicate the direction of refrigerant flow in the second refrigerant flow path 92. The first refrigerant flow path 90 consists of the counterclockwise portion of the first outer flow path 36A of the front cover 22, the first outer flow paths 36B to 36E of the front cover 22, the clockwise portion of the first outer flow path 36F, the second inner flow paths 54A to 54E of the rear cover 24, and a plurality of axial flow paths 20A connecting each flow path of the front cover 22 and each flow path of the rear cover 24. That is, the axial flow paths 20A in the first refrigerant flow path 90 are connected in a series by the first outer flow path 36 and the second inner flow path 54. Furthermore, the second refrigerant flow path 92 is composed of the counterclockwise portion of the first inner flow path 34A of the front cover 22, the first inner flow paths 34B to 34E of the front cover 22, the clockwise portion of the first inner flow path 34F, the second outer flow paths 56A to 56E of the rear cover 24, and a plurality of axial flow paths 20A that connect each flow path of the front cover 22 and each flow path of the rear cover 24. That is, the axial flow paths 20A in the second refrigerant flow path 92 are connected in a series by the first inner flow path 34 and the second outer flow paths 56. In the first range R1, the first refrigerant flow path 90 and the second refrigerant flow path 92 do not intersect. That is, the first refrigerant flow path 90 and the second refrigerant flow path 92 are independent flow paths. In the first range R1, the refrigerant flows meanderingly in the direction of axis A within the first refrigerant flow path 90 and the second refrigerant flow path 92.

[0034] The second refrigerant system 82 includes a third refrigerant flow path 100 and a fourth refrigerant flow path 102. The third refrigerant flow path 100 and the fourth refrigerant flow path 102 connect to the supply flow path 30 and the discharge flow path 32, respectively. In Figure 4, the direction of refrigerant flow in the third refrigerant flow path 100 is indicated by a thin arrow, and the direction of refrigerant flow in the fourth refrigerant flow path 102 is indicated by a thick arrow. The third refrigerant flow path 100 consists of the clockwise portion of the first outer flow path 36A of the front cover 22, the counterclockwise portion of the first outer flow path 36F, the second inner flow path 54F of the rear cover 24, and a plurality of axial flow paths 20A that connect each flow path of the front cover 22 and each flow path of the rear cover 24. That is, the axial flow paths 20A in the third refrigerant flow path 100 are connected in a series by the first outer flow path 36 and the second inner flow path 54. Furthermore, the fourth refrigerant flow path 102 is composed of the clockwise portion of the first inner flow path 34A of the front cover 22, the counterclockwise portion of the first inner flow path 34F, the second outer flow path 56F of the rear cover 24, and a plurality of axial flow paths 20A that connect each flow path of the front cover 22 and each flow path of the rear cover 24. That is, the axial flow paths 20A in the fourth refrigerant flow path 102 are connected in a series by the first inner flow path 34 and the second outer flow path 56. In the second range R2, the third refrigerant flow path 100 and the fourth refrigerant flow path 102 do not intersect. That is, the third refrigerant flow path 100 and the fourth refrigerant flow path 102 are independent flow paths. In the second range R2, the refrigerant flows meanderingly in the direction of axis A within the third refrigerant flow path 100 and the fourth refrigerant flow path 102.

[0035] As described above, as shown in Figures 1 and 4, the motor unit 10 includes a motor 14 extending along axis A, a housing 12 housing the motor 14, and a flow path provided in the housing 12 and configured to allow refrigerant to flow in the circumferential direction (an example of the "circumferential direction") of the housing 12. The flow path includes a supply flow path 30 to which refrigerant is supplied, a discharge flow path 32 to which refrigerant is discharged and which is located at a different position in the circumferential direction from the supply flow path 30, a first refrigerant system 80 provided in a first range R1, and a second refrigerant system 82 provided in a second range R2. The first refrigerant system 80 includes a first refrigerant flow path 90 connecting the supply flow path 30 and the discharge flow path 32, and a second refrigerant flow path 92 connecting the supply flow path 30 and the discharge flow path 32 independently of the first refrigerant flow path 90.

[0036] With the above configuration, the pressure loss in the first refrigerant system 80 can be reduced compared to a configuration in which the first refrigerant system 80 has only one independent refrigerant flow path. As a result, the amount of refrigerant supplied to the first refrigerant system 80 can be increased. Consequently, the difference between the cooling capacity near the supply flow path 30 and the cooling capacity near the discharge flow path 32 in the first refrigerant system 80 can be reduced. As a result, the cooling performance of the motor unit 10 can be improved.

[0037] Furthermore, as shown in Figure 4, the first length L1 in the circumferential direction of the first range R1 is equal to the second length in the circumferential direction of the second range R2. L2 It is longer than that.

[0038] When the first length L1 is longer than the second length L2, the difference between the cooling capacity near the supply channel 30 and the cooling capacity near the discharge channel 32 in the first refrigerant system 80 becomes larger than the difference between the cooling capacity near the supply channel 30 and the cooling capacity near the discharge channel 32 in the second refrigerant system 82. With the above configuration, the amount of refrigerant supplied to the first refrigerant system 80 can be increased, so the difference in cooling capacity in the first refrigerant system 80, which has a relatively large difference in cooling capacity, can be reduced.

[0039] Furthermore, as shown in Figure 4, the first refrigerant flow path 90 and the second refrigerant flow path 92 each have a plurality of axial flow paths 20A extending in the axial direction of the housing 12, and at least one circumferential flow path extending in the circumferential direction (for example, a first inner flow path 34, a first outer flow path 36, a second inner flow path 54, and a second outer flow path 56). The plurality of axial flow paths 20A in the first refrigerant flow path 90 and the second refrigerant flow path 92 are connected in a series by at least one circumferential flow path.

[0040] A possible configuration is in which the first refrigerant flow path 90 and the second refrigerant flow path 92 have a plurality of flow paths extending in the circumferential direction of the housing 12 and at least one flow path extending in the direction of axis A. With the above configuration, the first refrigerant flow path 90 and the second refrigerant flow path 92 can be formed more easily compared to a configuration in which a plurality of flow paths extending in the circumferential direction of the housing 12 are connected in a series by at least one flow path extending in the direction of axis A.

[0041] Furthermore, as shown in Figure 1, the housing 12 includes a cylindrical central housing 20, a front cover 22 (an example of a "first cover") connected to the front end (an example of a "first end") of the central housing 20 in the axial direction A, and a rear cover 24 (an example of a "second cover") connected to the rear end (an example of a "second end") of the central housing 20 in the axial direction A. Multiple axial flow channels 20A are provided in the central housing 20, and at least one circumferential flow channel is provided in either the front cover 22 or the rear cover 24.

[0042] With the above configuration, the first refrigerant flow path 90 and the second refrigerant flow path 92 can be easily formed compared to a configuration in which the housing 12 is composed of two members.

[0043] Furthermore, as shown in Figures 2 and 3, all of the multiple axial flow channels 20A are located at the same position in the radial direction. In other words, all of the multiple axial flow paths 20A are located at positions that are equal in distance from the central axis of the cylindrical central housing 20.As shown in Figure 4, at least one circumferential flow path includes a first inner flow path 34 and a second inner flow path 54 (an example of a "first circumferential flow path") that connect two adjacent axial flow paths 20A, and a first outer flow path 36 and a second outer flow path 56 (an example of a "second circumferential flow path") that connect two axial flow paths 20A located on either side of the two axial flow paths 20A.

[0044] With the above configuration, multiple axial flow channels 20A can be easily formed compared to a configuration in which each of the multiple axial flow channels 20A is provided at a different position in the radial direction.

[0045] Furthermore, as shown in Figure 4, in the front cover 22 or the rear cover 24, the first inner flow path 34 and the second inner flow path 54 are at least partially adjacent in the radial direction to the first outer flow path 36 and the second outer flow path 56.

[0046] With the above configuration, multiple circumferential flow channels can be easily formed compared to a configuration in which the first inner flow channel 34, the second inner flow channel 54 and the first outer flow channel 36, the second outer flow channel 56 are at least partially adjacent in the direction of axis A.

[0047] Furthermore, as shown in Figure 4, the second refrigerant system 82 includes a third refrigerant flow path 100 that connects the supply flow path 30 and the discharge flow path 32, and a fourth refrigerant flow path 102 that connects the supply flow path 30 and the discharge flow path 32 independently of the third refrigerant flow path 100.

[0048] According to the above configuration, the overall pressure loss of the motor unit 10 can be reduced. Therefore, the cooling capacity of the motor unit 10 can be improved.

[0049] The specific examples of the technology disclosed herein have been described in detail above, but these are merely illustrative and do not limit the scope of the claims. The technology described in the claims includes various modifications and changes to the specific examples described above.

[0050] (First Modification) As shown in Figure 5, the second refrigerant system 182 may have only one refrigerant flow path 200. In this modification, the first outer flow path 36A of the front cover 22 does not have a first radial flow path 40 on the clockwise side, and the first outer flow path 36F of the front cover 22 does not have a first radial flow path 40 on the clockwise side. Also, the rear cover 24 does not have a second outer flow path 56F. With this configuration, the amount of refrigerant supplied to the first refrigerant system 80 can be increased compared to a configuration in which the first refrigerant system and the second refrigerant system each have only one flow path. Therefore, the difference between the cooling capacity near the supply flow path 30 of the first refrigerant system 80 and the cooling capacity near the discharge flow path 32 of the first refrigerant system 80 can be reduced. In addition, the difference between the cooling capacity of the first refrigerant system 80 and the cooling capacity of the second refrigerant system 182 can be reduced.

[0051] (Second modified example) The first length L1 of the first range R1 and the second length L2 of the second range R2 may be the same.

[0052] (Third Modification) The first refrigerant system 80 may have three or more independent refrigerant flow paths. The second refrigerant system 82 may also have three or more independent refrigerant flow paths.

[0053] (Fourth Modification) The first outer flow path 36 does not have to be equipped with two first radial flow paths 40. Also, the second outer flow path 56 does not have to be equipped with two second radial flow paths 60. In this modification, the axial flow path 20A of the central housing 20 is inclined with respect to the direction of axis A.

[0054] (Fifth Modification) The front cover 22 does not have to be provided with the first outer flow path 36A. In this modification, the first inner flow path 34A extends between the circumferential positions of the first radial flow path 40 at both ends of the first outer flow path 36A.

[0055] (Sixth Modification) The first refrigerant flow path 90 and the second refrigerant flow path 92 may be meandering flow paths in the circumferential direction.

[0056] Furthermore, the technical elements described herein or in the drawings demonstrate technical usefulness individually or in various combinations, and are not limited to the combinations described in the claims at the time of filing. In addition, the technologies illustrated herein or in the drawings can achieve multiple objectives simultaneously, and achieving even one of these objectives constitutes technical usefulness in itself. [Explanation of Symbols]

[0057] 2: Drive unit, 10: Motor unit, 12: Housing, 14: Motor, 20: Central housing, 20A: Axial flow path, 22: Front cover, 24: Rear cover, 30: Supply flow path, 30A: Refrigerant supply port, 32: Discharge flow path, 32A: Refrigerant discharge port, 34, 34A~34F: First inner flow path, 36, 36A~36F: First outer flow path, 38: First connecting flow path, 40: First radial flow path, 54, 54A~54F: Second inner flow path, 56, 56A~56F: Second outer flow path, 58: Second connecting flow path, 60: Second radial flow path, 70: Motor shaft, 72: Rotor, 74: Stator, 80: First refrigerant system, 82: Second refrigerant system, 90: First refrigerant flow path, 92: Second refrigerant flow path, 100: Third refrigerant flow path, 102: Fourth refrigerant flow path

Claims

1. A motor extending along the central axis, A housing for the motor, A flow path is provided in the housing and configured to allow the refrigerant to flow in the circumferential direction of the housing, Equipped with, The aforementioned flow path is The supply channel through which the refrigerant is supplied, The refrigerant is discharged, and the discharge channel is located at a different position in the circumferential direction from the supply channel, A first refrigerant system is provided in a first range extending from the supply channel toward one side in the circumferential direction to the discharge channel, The system comprises a second refrigerant system provided in a second range extending from the supply channel toward the other side in the circumferential direction to the discharge channel, The first refrigerant system comprises a first refrigerant flow path connecting the supply flow path and the discharge flow path, and a second refrigerant flow path that connects the supply flow path and the discharge flow path independently of the first refrigerant flow path. The first refrigerant flow path and the second refrigerant flow path each have a plurality of axial flow paths extending in the axial direction of the housing and at least one circumferential flow path extending in the circumferential direction. The plurality of axial flow paths in the first refrigerant flow path and the second refrigerant flow path are connected in a series by at least one circumferential flow path. Motor unit.

2. The motor unit according to claim 1, wherein the first length, which is the length of the first range along the circumferential direction, is longer than the second length, which is the length of the second range along the circumferential direction.

3. The housing includes a cylindrical central housing, a first cover connected to one end of the central housing in the axial direction, and a second cover connected to the other end of the central housing in the axial direction. The plurality of axial flow paths are provided in the central housing, The motor unit according to claim 1, wherein at least one circumferential flow path is provided in either the first cover or the second cover.

4. All of the aforementioned multiple axial flow paths are located at positions equal to the central axis of the central housing, The motor unit according to claim 3, wherein the at least one circumferential flow path includes a first circumferential flow path connecting two adjacent axial flow paths and a second circumferential flow path connecting two axial flow paths located on either side of the two adjacent axial flow paths.

5. The motor unit according to claim 4, wherein in the first cover and the second cover, the first circumferential flow path and the second circumferential flow path are at least partially adjacent in the radial direction.

6. The motor unit according to claim 1, wherein the second refrigerant system comprises a third refrigerant passage connecting the supply passage and the discharge passage, and a fourth refrigerant passage connecting the supply passage and the discharge passage independently of the third refrigerant passage.

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