Motor unit

The reinforced busbar design addresses the rigidity issue by changing the thickness direction along the width, reducing vibration amplitude and enabling a more compact motor unit.

JP7845155B2Active 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
2022-11-29
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

The rigidity of plate-shaped busbars in stators is low in the direction orthogonal to their wide surface, leading to increased amplitude and potential contact with the casing during vibrations.

Method used

The busbar design includes a reinforced section where the thickness direction changes along the width direction, increasing the second moment of area and enhancing rigidity, with specific configurations for easy connection to stator coils and external equipment.

Benefits of technology

The reinforced busbar design reduces vibration amplitude, minimizes contact with the casing, and allows for a more compact motor unit design by reducing the distance between the busbar and casing components.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a technology for improving rigidity in a direction that is orthogonal to a wide surface of a plate-shaped bus bar.SOLUTION: A monitor unit disclosed in the present description includes a rotor that is rotatably supported, a stator core facing the rotor in a radial direction, a stator coil disposed on the stator core, and a plate-shaped first bus bar having a base end connected to the stator coil, and having a connection terminal on a head end thereof. The first bus bar has a straight section extending along a straight line, and the straight section has a reinforcement section in which the thickness direction of the first bus bar varies along the width direction of the first bus bar.SELECTED DRAWING: Figure 2
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Description

Technical Field

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

Background Art

[0002] Patent Document 1 discloses a stator including a stator core, a coil disposed annularly along the circumferential direction of the stator core, and a busbar unit that connects the coil and an external power source. The busbar unit has a plate-shaped terminal extending in the axial direction of the stator.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In the above stator, since the plate-shaped terminal extends along a straight line, when vibration is applied to the stator, the amplitude tends to increase in the direction orthogonal to the wide surface of the terminal. This specification provides a technique for improving the rigidity in the direction orthogonal to the wide surface of the plate-shaped busbar.

Means for Solving the Problems

[0005] The motor unit disclosed herein comprises a rotatably supported rotor, a stator core radially opposite to the rotor, stator coils provided on the stator core, and a plate-shaped first busbar whose base end is connected to the stator coils and which has a connecting terminal at its tip. The first busbar has a straight section extending along a straight line, and the straight section has a reinforcing section in which the thickness direction of the first busbar changes along the width direction of the first busbar. The thickness direction of the first busbar as used herein means the direction perpendicular to the plate-shaped busbar. In other words, the thickness direction of the first busbar can also be expressed as the direction that passes through the plate-shaped first busbar by the shortest distance.

[0006] In the motor unit described above, the straight section of the plate-shaped first busbar has a reinforced section. In the reinforced section, the thickness direction of the first busbar changes along the width direction of the first busbar. As a result, in the reinforced section, the height of the cross-sectional shape of the first busbar, i.e., the height in the direction perpendicular to the wide surface, is larger compared to the section where the thickness direction is constant along the width direction of the first busbar. This increases the second moment of area in the reinforced section, thereby improving the rigidity in the direction perpendicular to the wide surface.

[0007] Details of the technology disclosed herein and further improvements are described in the following "Modes for Carrying Out the Invention". [Brief explanation of the drawing]

[0008] [Figure 1] A plan view of a vehicle equipped with a drive unit 10 comprising the motor unit 40 of the first embodiment is shown. [Figure 3] A perspective view of the motor unit 40 of the first embodiment is shown. [Figure 2] Figure 2 shows a cross-sectional view along line III-III. [Figure 4] Figure 3 shows a cross-sectional view along line IV-IV. [Figure 5] This shows a cross-sectional view of the reinforced section 56A of the motor unit 40A of the second embodiment. [Figure 6]This shows a cross-sectional view of the reinforced section 56B of the motor unit 40B of the third embodiment. [Figure 7] This shows a cross-sectional view of the reinforced section 56C of the motor unit 40C of the fourth embodiment. [Modes for carrying out the invention]

[0009] In one embodiment of this technology, the straight section may further have a first flat section in which the thickness direction of the first busbar is constant along the width direction of the first busbar. In this case, the first flat section may be located between the base end and the reinforcing section. With this configuration, the first busbar can be easily connected to the stator coil compared to a configuration in which the reinforcing section extends to the base end.

[0010] In one embodiment of this technology, the straight section may further have a second flat section in which the thickness direction of the first busbar is constant along the width direction of the first busbar. In this case, the second flat section may be located between the tip and the reinforcing section. With such a configuration, compared to a configuration in which the reinforcing section extends to the tip, the first busbar can be easily connected to external equipment, for example.

[0011] In one embodiment of this technology, the motor unit may further comprise a casing having a partition wall inside. In this case, the base end of the first busbar may be located on one side of the partition wall, and the tip of the first busbar may be located on the other side of the partition wall. Furthermore, the reinforcing section of the first busbar may pass through an opening formed in the partition wall without contacting the partition wall. Such a configuration allows for a reduction in the distance between the partition wall and the reinforcing section. This, for example, allows for a reduction in the size of the casing.

[0012] In one embodiment of this technology, the straight section of the first busbar may extend parallel to the rotation axis of the rotor. However, in another embodiment, the straight section of the first busbar may extend in a direction perpendicular to the rotation axis of the rotor.

[0013] In one embodiment of this technology, the motor unit may further include a gear connected to the rotor. In this case, the reinforcing section of the first busbar may have a recess facing the gear, and the recess may catch the lubricant splashed from the gear. With this configuration, the contact area between the lubricant and the reinforcing section is increased, so that heat from the reinforcing section is more easily transferred to the lubricant.

[0014] In one embodiment of this technology, the motor unit may further include a plate-shaped second busbar whose base end is connected to the stator coil and which has a connecting terminal at its tip. In this case, the second busbar has a straight-line section extending along a straight line, and the straight-line section of the second busbar may extend parallel to the straight-line section of the first busbar. However, in another embodiment, the motor unit may not include the second busbar.

[0015] In one embodiment of this technology, the straight section of the second busbar may have a reinforcing section in which the thickness direction of the second busbar changes along the width direction of the second busbar. With such a configuration, the rigidity of the second busbar can be improved.

[0016] In one embodiment of this technology, the motor unit may further comprise a casing having a partition wall inside, with a first opening and a second opening formed in the partition wall. In this case, the base end of the first busbar and the base end of the second busbar may be located on one side of the partition wall. Furthermore, the tip of the first busbar and the tip of the second busbar may be located on the other side of the partition wall. In this case, the reinforcing section of the first busbar may pass through the first opening formed in the partition wall without contacting the partition wall, and the reinforcing section of the second busbar may pass through the second opening formed in the partition wall without contacting the partition wall. With such a configuration, the distance between the partition wall and the reinforcing section of the second busbar can be reduced. This allows, for example, to reduce the size of the casing.

[0017] In one embodiment of the present technology, the motor unit may further include a plate-shaped third bus bar having a proximal end connected to the stator coil and a connection terminal at the distal end. In that case, each of the third bus bar and the third bus bar may have a straight section extending along a straight line. Further, the straight section of the third bus bar may extend in parallel with the straight section of the second bus bar. However, in another embodiment, the motor unit may not include a third bus bar.

[0018] In one embodiment of the present technology, the straight section of the third bus bar may have a reinforcing section in which the thickness direction of the third bus bar changes along the width direction of the third bus bar. According to such a configuration, the rigidity of the third bus bar can be improved.

[0019] In one embodiment of the present technology, the motor unit may further include a casing having a partition wall inside and having a first opening, a second opening, and a third opening formed in the partition wall. In that case, the proximal ends of the first bus bar, the second bus bar, and the third bus bar may be located on one side of the partition wall. Further, the distal ends of the first bus bar, the second bus bar, and the third bus bar may be located on the other side of the partition wall. In that case, the reinforcing section of the first bus bar may pass through the first opening formed in the partition wall without contacting the partition wall, and the reinforcing section of the second bus bar may pass through the second opening formed in the partition wall without contacting the partition wall. Further, the reinforcing section of the third bus bar may pass through the third opening formed in the partition wall without contacting the partition wall. According to such a configuration, the distance between the partition wall and the reinforcing section of the third bus bar can be reduced. Thereby, for example, the size of the casing can be reduced.

[0020] In one embodiment of the present technology, the straight sections of the first bus bar, the straight sections of the second bus bar, and the straight sections of the third bus bar may extend parallel to the rotation axis of the rotor. However, in another embodiment, the straight sections of the first bus bar, the straight sections of the second bus bar, and the straight sections of the third bus bar may extend in directions intersecting each other.

[0021] In one embodiment of the present technology, the straight sections of the first bus bar, the straight sections of the second bus bar, and the straight sections of the third bus bar may be arranged along the circumferential direction centered on the rotation axis. However, in another embodiment, the straight sections of the first bus bar, the straight sections of the second bus bar, and the straight sections of the third bus bar may be arranged along the radial direction centered on the rotation axis.

[0022] In one embodiment of the present technology, the partition wall may be provided with a first reinforcing rib located between the first opening and the second opening, and a second reinforcing rib located between the second opening and the third opening. In that case, the first reinforcing rib and the second reinforcing rib may be arranged radially centered on the rotation axis of the rotor. According to such a configuration, the first reinforcing rib reinforces the partition wall between the first opening and the second opening, and the second reinforcing rib reinforces the partition wall between the second opening and the third opening. Thereby, it is possible to suppress the contact between the reinforcing sections of each bus bar passing through each opening and the partition wall.

[0023] (First Embodiment) Figure 1 shows a schematic diagram of an electric vehicle 100 equipped with a drive unit 10 comprising a motor unit 40 of the first embodiment. In addition to the drive unit 10, the electric vehicle 100 comprises a body 2, a front drive shaft 5F, a pair of front wheels 4F, a rear drive shaft 5R, a pair of rear wheels 4R, a battery pack 6, and a rear suspension member 8. For ease of understanding, the body 2 of the electric vehicle 100 is shown as a dashed line in Figure 1. The electric vehicle 100 in this specification includes not only electric vehicles but also hybrid vehicles and fuel cell vehicles. In the coordinate system in the figure, FR indicates the front of the electric vehicle 100, UP indicates the top of the electric vehicle 100, and LH indicates the left of the electric vehicle 100. Hereafter, "up", "down", "left", "right", "front", and "rear" will be described based on the coordinate system in the figure.

[0024] A pair of front wheels 4F are located at both ends of the front drive shaft 5F, and a pair of rear wheels 4R are located at both ends of the rear drive shaft 5R.

[0025] The drive unit 10 is located below the rear seat (not shown) of the electric vehicle 100 and is positioned above the rear suspension member 8. The drive unit 10 drives a pair of rear wheels 4R of the electric vehicle 100 via the rear drive shaft 5R. In addition to the motor unit 40, the drive unit 10 further comprises an inverter unit 20 and a gear unit 30. The motor unit 40 incorporates a motor 42. The inverter unit incorporates an inverter 22. The gear unit 30 incorporates a gear mechanism 32. As will be described in detail later, the units 20, 30, and 40 of the drive unit 10 each have a case, and adjacent cases are fastened to each other. In a modified example, the drive unit 10 may be mounted on the front component. In that case, the drive unit 10 drives a pair of front wheels 4F via the front drive shaft 5F.

[0026] The battery pack 6 is located beneath the floor panel (not shown) of the electric vehicle 100. The battery pack 6 supplies power to the drive unit 10, which drives the pair of rear wheels 4R. The drive unit 10 also functions as a generator. The battery pack 6 stores the power supplied by the drive unit 10. The inverter 22 is connected to the battery pack 6 by a power cable 7. The inverter 22 converts the DC power from the battery pack 6 into AC power suitable for driving the motor 42.

[0027] Referring to Figure 2, the motor unit 40 will be described in detail. In addition to the motor 42, the motor unit 40 includes a motor casing 41, a first busbar 50, a second busbar 60, and a third busbar 70. The motor 42 also includes a rotor 44 and a stator core 46.

[0028] The rotor 44 has a cylindrical shape and extends in the left-right direction along the rotation axis A1. The rotor 44 has a motor shaft 47 that extends to the left along the rotation axis A1. The rotor 44 is made of a magnetic material and houses a permanent magnet (not shown) inside.

[0029] The stator core 46 has a cylindrical shape and extends left and right along the rotation axis A1. The stator core 46 is located outside the rotor 44. A gap is provided between the stator core 46 and the rotor 44. The stator core 46 faces the rotor 44 in the radial direction. The stator core 46 is made of a magnetic material. The stator core 46 is provided with a U-phase stator coil 48U, a V-phase stator coil 48V, and a W-phase stator coil 48W. Each coil 48U, 48V, and 48W is wound around the outer surface of the stator core 46. Each coil 48U, 48V, and 48W is arranged sequentially along the circumferential direction centered on the rotation axis A1. When current flows periodically through each coil 48U, 48V, and 48W, the magnetic force between each coil 48U, 48V, and 48W and the rotor 44 changes. As a result, the rotor 44 rotates around the rotation axis A1.

[0030] A first busbar 50 is connected to the V-phase stator coil 48V. The first busbar 50 is a component for connecting the V-phase stator coil 48V and the inverter 22. The first busbar 50 is made of copper plate material. The first busbar 50 has a first base end 51, a first tip end 59, and a first straight section 52. The first base end 51 is located at the base of the first busbar 50. Specifically, the first base end 51 is located between the part connected to the V-phase stator coil 48V and the first straight section 52. The first straight section 52 extends parallel to the rotation axis A1 of the rotor 44. The first straight section 52 has a first flat section 54, a first reinforced section 56, and a second flat section 58. The cross-sectional shapes of the first straight section 52 and the flat sections 54 and 58 are different from each other. The cross-sectional shapes of sections 52, 54, and 58 will be described later with reference to Figure 4. The first tip 59 is the part that is fastened to the inverter 22 and has a first through hole 55 and a first sealing member S1. The first sealing member S1 is made of an elastic material, such as an O-ring.

[0031] A second busbar 60 is connected to the U-phase stator coil 48U. The second busbar 60 has the same structure as the first busbar 50, is made of copper plate material, and comprises a second base end 61, a second straight section 62, and a second tip 69. The second straight section 62 of the second busbar 60 extends in the left-right direction along the rotation axis A1. That is, the second straight section 62 of the second busbar 60 extends parallel to the first straight section 52 of the first busbar 50. The second straight section 62 has a first flat section 64, a second reinforcing section 66, and a second flat section 68. The second tip 69 is the part that is fastened to the inverter 22 and has a second through hole 65 and a second sealing member S2.

[0032] A third busbar 70 is connected to the W-phase stator coil 48W. The third busbar 70 has the same structure as the first busbar 50 and the second busbar 60, is made of copper plate material, and comprises a third base end 71, a third straight section 72, and a third tip 79. The third straight section 72 of the third busbar 70 extends in the left-right direction along the rotation axis A1. That is, the third straight section 72 of the third busbar 70 extends parallel to the second straight section 62 of the second busbar 60. The third straight section 72 has a first flat section 74, a third reinforcing section 76, and a second flat section 78. The third tip 79 is the part that is fastened to the inverter 22 and has a third through hole 75 and a third sealing member S3.

[0033] As shown in Figure 2, the straight sections 52, 62, and 72 of each busbar are arranged in the circumferential direction around the rotation axis A1. In the motor unit 40, the straight sections 52, 62, and 72 of each busbar extend parallel to the rotation axis A1. Therefore, when viewed along the rotation axis A1, each busbar 50, 60, and 70 is positioned inside the outer circumference of the motor casing 41 of the motor unit 40. As a result, the casing 11 of the drive unit 10 does not become larger than the outer circumference of the motor casing 41 in order to accommodate each busbar 50, 60, and 70. The size of the casing 11 of the drive unit 10 can be reduced.

[0034] Referring to Figure 3, the internal structure of the drive unit 10 will be described. Figure 3 is a cross-sectional view along line II-II in Figure 2. That is, Figure 3 shows a cross-sectional view of the inside of the casing 11 of the drive unit 10, viewed from above. The casing 11 is formed by fastening the casings 21, 31, and 41 of each unit 20, 30, and 40 to each other.

[0035] The motor shaft 47 of the rotor 44 is supported by the motor casing 41 via a pair of bearings 49. That is, the rotor 44 is rotatably supported relative to the motor casing 41 about the rotation axis A1.

[0036] The motor shaft 47 extends to the left from the motor casing 41 to the gear casing 31 and connects to the link gear 34 of the gear mechanism 32. The link gear 34 transmits the rotation of the rotor 44 to the differential gear 36 of the gear mechanism 32. This causes the rear drive shaft 5R, which is connected to the differential gear 36, to rotate. As a result, a pair of rear wheels 4R (see Figure 1) are driven.

[0037] A right-side bulkhead 43 is provided at the boundary between the gear casing 31 and the motor casing 41 of the casing 11. The right-side bulkhead 43 separates the internal space of the gear casing 31 from the internal space of the motor casing 41. The motor shaft 47 and the rear drive shaft 5R of the rotor 44 extend in the left-right direction, passing through the right-side bulkhead 43. Furthermore, the right-side bulkhead 43 has a first opening 45F. As shown in Figure 3, the first busbar 50 is inserted into the first opening 45F.

[0038] The first busbar 50 passes through the first opening 45F and extends to the left within the gear casing 31. The first busbar 50 passes through a through-hole 35 in the left-side partition wall 33, which is provided at the boundary between the gear casing 31 and the inverter casing 21 of the casing 11, and reaches the internal space of the inverter casing 21. The inner circumferential surface of the through-hole 35 abuts against the first sealing member S1 provided at the first tip 59 of the first busbar 50. This seals the through-hole 35 in the left-side partition wall 33.

[0039] Within the internal space of the inverter casing 21, the rear surface of the first tip 59 of the first busbar 50 and the front surface of the connection portion 24 of the inverter 22 are in contact. A bolt B1 is inserted from the front into the first through hole 55 of the first tip 59. The bolt B1 fastens the first tip 59 of the first busbar 50 to the connection portion 24 of the inverter 22. This connects the first busbar 50 to the inverter 22.

[0040] For example, when the drive unit 10 vibrates while the electric vehicle 100 is running, the first busbar 50 also vibrates. As mentioned earlier, since the first busbar 50 is made of a plate-shaped member, it has a certain thickness in the width direction. Generally, plate-shaped members have relatively low rigidity in the thickness direction. Therefore, the first straight section 52 of the first busbar 50 in this embodiment tends to have a large amplitude in the front-rear direction (i.e., the up-down direction in the plane of the paper in Figure 3). If the first straight section 52 of the first busbar 50 swings greatly in the front-rear direction, the first straight section 52 of the first busbar 50 may come into contact with the inner surface of the casing 11 or the inner surface of the first opening 45F. In this specification, "thickness direction" means the direction perpendicular to the plate-shaped busbar, or in other words, the direction that passes through the plate-shaped busbar in the shortest distance.

[0041] Referring to Figure 4, the cross-sectional shapes of each reinforcement section 56, 66, and 76 will be described. As shown in the enlarged view on the left side of Figure 4, the cross-sectional shape of the first reinforcement section 56 of the first busbar 50 is bent so that the central part of the width direction WD1 of the first busbar 50 is displaced forward. As a result, below the center of the width direction WD1 of the first reinforcement section 56, the thickness direction T1 of the first busbar 50 is inclined so that it is displaced downward as it approaches the front, and above the center of the width direction WD1, the thickness direction T2 of the first busbar 50 is inclined so that it is displaced upward as it approaches the front. That is, in the first reinforcement section 56, the thickness direction of the first busbar 50 changes along the width direction WD1 of the first busbar 50. On the other hand, the cross-sectional shape of the first flat section 54 is not bent. Therefore, in the first flat section 54, the thickness direction T3 is constant along the width direction WD1 of the first busbar 50.

[0042] Therefore, in the first reinforced section 56, the height H1 of the cross-sectional shape of the first busbar 50 is greater than the height H2 of the cross-sectional shape of the first flat section 54. As a result, the second moment of area of ​​the first reinforced section 56 in the longitudinal direction (i.e., the left-right direction in the plane of the paper in Figure 4) is greater than the second moment of area of ​​the first flat section 54. Therefore, the rigidity of the first reinforced section 56 against vibration in the longitudinal direction is improved. As a result, the amplitude in the longitudinal direction of the first straight section 52 of the first busbar 50 can be reduced.

[0043] Furthermore, as shown in Figure 3, the cross-sectional shape of the first straight section 52 of the first busbar 50 switches from the first reinforced section 56 to the first flat section 54 to the right of the first opening 45F. That is, the first flat section 54 is located between the first base end 51 and the first reinforced section 56. The first flat section 54 is easier to ensure a flat surface than the first reinforced section 56. For this reason, the first busbar 50 can be easily connected to the V-phase stator coil 48V compared to a configuration in which the first reinforced section 56 extends to the first base end 51.

[0044] Similar to the thickness direction T3 of the first flat section 54, the thickness direction of the second flat section 58 is constant along the width direction WD1 of the first busbar 50. For this reason, it is easier to ensure a flat surface in the second flat section 58 compared to the first reinforced section 56. The second flat section 58 is located between the first tip 59 and the first reinforced section 56. This makes it easier to connect the first busbar 50 to the connection part 24 of the inverter 22 compared to a configuration in which the first reinforced section 56 extends to the first tip 59.

[0045] Furthermore, as shown in Figure 3, the first base end 51 of the first busbar 50 is located to the right of the right-side bulkhead 43, which is provided inside the casing 11. The first tip end 59 of the first busbar 50 is located to the left of the right-side bulkhead 43. The first reinforcing section 56 of the first busbar 50 passes through the first opening 45F formed in the right-side bulkhead 43 without contacting the right-side bulkhead 43. As a result, the reinforcing section 56 of the first busbar 50 faces the inner surface of the first opening 45F. By placing the first reinforcing section 56, which has a small amplitude, facing the first opening 45F, it is possible to suppress contact between the first reinforcing section 56, which is located inside the first opening 45F, and the inner surface of the first opening 45F when vibration is applied to the first busbar 50. For this reason, for example, in the front-rear direction, the inner surface of the first opening 45F can be brought closer to the first reinforcing section 56. As a result, the size of the casing 11 can be reduced.

[0046] As mentioned earlier, the first reinforcement section 56 has a bent cross-sectional shape. Therefore, as shown in the enlarged view on the left of Figure 4, a recess D1 is formed behind the first reinforcement section 56. The recess D1 faces the link gear 34, which is connected to the motor shaft 47 of the rotor 44. Lubricant L1 is applied to the outer circumferential surface of the link gear 34. This allows the link gear 34 and the differential gear 36 to rotate smoothly. For example, when the link gear 34 rotates in the direction of arrow F1 around the rotation axis A1, the lubricant L1 is scattered forward. As a result, the lubricant L1 enters the recess D1 facing the link gear 34. In this way, the first reinforcement section 56 receives the lubricant L1 scattered from the link gear 34 by the recess D1. This increases the contact area between the first reinforcement section 56 and the lubricant L1. Therefore, heat from the first reinforced section 56 is easily transferred to the lubricant L1.

[0047] As shown in Figure 4, the reinforcing sections 56, 66, and 76 are arranged in the circumferential direction around the rotation axis A1. Furthermore, the width direction of each reinforcing section 56, 66, and 76 is inclined to be tangent to the circumferential direction. That is, the width direction of each reinforcing section 56, 66, and 76 is roughly perpendicular to the radial direction around the rotation axis A1. The cross-sectional shape of the second reinforcing section 66 of the second busbar 60 and the cross-sectional shape of the third reinforcing section 76 of the third busbar 70 are the same as the cross-sectional shape of the first reinforcing section 56 of the first busbar 50. That is, in the second reinforcing section 66 of the second busbar 60, the thickness direction of the second busbar 60 changes along the width direction of the second busbar 60, and in the third reinforcing section 76 of the third busbar 70, the thickness direction of the third busbar 70 changes along the width direction of the third busbar 70. Therefore, the radial rigidity of the second busbar 60 and the third busbar 70 can be improved.

[0048] In addition to the first opening 45F, the right-side bulkhead 43 is formed with a second opening 45S and a third opening 45T. Furthermore, similar to the first reinforcing section 56 of the first busbar 50, the second reinforcing section 66 of the second busbar 60 passes through the second opening 45S, and the third reinforcing section 76 of the third busbar 70 passes through the third opening 45T. Therefore, radially, the inner surface of the second opening 45S can be brought closer to the second reinforcing section 66, and the inner surface of the third opening 45T can be brought closer to the third reinforcing section 76. As a result, the size of the casing 11 can be reduced.

[0049] As shown in Figure 4, the right partition wall 43 is provided with, in addition to the openings 45F, 45S, and 45T, a first reinforcing rib R1, a second reinforcing rib R2, a third reinforcing rib R3, a fourth reinforcing rib R4, and a fifth reinforcing rib R5. Each of the reinforcing ribs R1, R2, R3, R4, and R5 protrudes to the left from the left side of the right partition wall 43 (i.e., the front side of the page in Figure 4).

[0050] The fifth reinforcing rib R5 has a cylindrical shape that covers the motor shaft 47 from the radial outside. Each reinforcing rib R1, R2, R3, and R4 connects the outer wall of the motor casing 41 to the fifth reinforcing rib R5. Each reinforcing rib R1, R2, R3, and R4 are arranged radially around the rotation axis A1. The first reinforcing rib R1 is located between the first opening 45F and the second opening 45S. The second reinforcing rib R2 is located between the second opening 45S and the third opening 45T. The third reinforcing rib R3 is located below the third opening 45T, and the fourth reinforcing rib R4 is located above the second opening 45S. That is, the first opening 45F is located between the first reinforcing rib R1 and the second reinforcing rib R2. The second opening 45S is located between the first reinforcing rib R1 and the fourth reinforcing rib R4. The third opening 45T is located between the second reinforcing rib R2 and the third reinforcing rib R3. By arranging the reinforcing ribs radially between each opening 45F, 45S, and 45T, the rigidity of the right-side bulkhead 43 between each opening 45F, 45S, and 45T is improved. This prevents contact between the inner surfaces of each opening 45F, 45S, and 45T and the reinforcing sections 56, 66, and 76 that pass through each opening 45F, 45S, and 45T.

[0051] Referring to Figures 5 to 7, the motor unit 40A of the second embodiment, the motor unit 40B of the third embodiment, and the motor unit 40C of the third embodiment will be described. The motor units 40A, 40B, and 40C of each embodiment differ from the motor unit 40 of the first embodiment described above in the cross-sectional shape of the reinforced section in the straight section of the busbar, but otherwise have the same configuration. Below, the cross-sectional shapes of the reinforced sections 56A, 56B, and 56C of the first busbar, which are among the reinforced sections of each busbar in the motor units 40A, 40B, and 40C of each embodiment, will be described.

[0052] As shown in Figure 5, the first reinforcement section 56A of the first busbar 50A in the motor unit 40A of the second embodiment has a cross-sectional shape that is bent multiple times along the width direction WD1. Therefore, below the center of the width direction WD1 of the first reinforcement section 56A, there is a portion that is inclined so that the thickness direction T4 of the first busbar 50A is displaced downward as it moves forward, and a portion that is inclined so that the thickness direction T5 of the first busbar 50A is displaced upward as it moves forward. The same applies to the portion above the center of the width direction WD1 of the first reinforcement section 56A. In other words, in the first reinforcement section 56A, the thickness direction of the first busbar 50A changes along the width direction WD1 of the first busbar 50A. Therefore, in the first reinforcement section 56A, the height H3 of the cross-sectional shape of the first busbar 50A is greater than the height H2 of the cross-sectional shape of the first flat section 54. As a result, the second moment of area of ​​the first reinforcement section 56 is greater than the second moment of area of ​​the first flat section 54. Therefore, the rigidity of the first reinforced section 56 is improved. This makes it possible to reduce the amplitude of the first straight section 52 of the first busbar 50A.

[0053] As shown in Figure 6, the first reinforced section 56B of the busbar 50B in the motor unit 40B of the third embodiment has a curved cross-sectional shape that bulges forward towards the center of the width direction WD1. In the first reinforced section 56A, the thickness direction of the first busbar 50A changes from the thickness direction T6 to the thickness direction T7 along the width direction WD1 of the first busbar 50A. Therefore, in the first reinforced section 56B, the height H4 of the cross-sectional shape of the first busbar 50B is greater than the height H2 of the cross-sectional shape of the first flat section 54.

[0054] As shown in Figure 7, the first reinforced section 56C of the busbar 50C in the motor unit 40C of the fourth embodiment has a main body extending in the vertical direction, an upper rim extending in the front-rear direction from the upper end of the main body, and a lower rim extending in the front-rear direction from the lower end of the main body. Therefore, in the main body of the first reinforced section 56C, the thickness direction T7 of the first busbar 50C is aligned with the front-rear direction. On the other hand, in the upper rim and lower rim, the thickness direction T8 of the first busbar 50C is aligned with the vertical direction. Thus, in the motor unit 40C of the fourth embodiment, the thickness direction of the first busbar 50C changes along the width direction WD1 of the first busbar 50A. Therefore, in the first reinforced section 56C, the height H5 of the cross-sectional shape of the first busbar 50B is greater than the height H2 of the cross-sectional shape of the first flat section 54.

[0055] 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 illustrated above. Modifications of the above embodiments are listed below.

[0056] (Modification 1) In the first embodiment described above, the motor unit 40 was equipped with three busbars 50, 60, and 70, but is not limited to this, and the motor unit 40 may be equipped with only one busbar 50. Furthermore, in a further modification, the motor unit 40 may be equipped with two busbars 50 and 60, or with four or more busbars.

[0057] (Modification 2) The first straight section 52 of the first bus bar 50 does not have to have a first flat section 54. In that case, the first reinforced section 56 may extend to the first base end 51.

[0058] (Modification 3) The first straight section 52 of the first bus bar 50 does not have to have a second flat section 58. In that case, the first reinforced section 56 may extend to the first tip 59.

[0059] (Modification 4) The right-side bulkhead 43 does not need to be provided inside the casing 11. In that case, the first reinforcement section 56 does not need to pass through the first opening 45F formed in the right-side bulkhead 43.

[0060] (Modification 5) The straight sections 52, 62, and 72 of each busbar may extend in a direction intersecting the rotation axis A1. In this case, each straight section 52, 62, and 72 may extend, for example, radially outward from the motor casing 41.

[0061] (Modification 6) The first reinforced section 56 of the first busbar 50 does not have to have a recess D1. For example, the first reinforced section 56 may have a recess provided on the side opposite to the link gear 34.

[0062] (Modification 7) The straight sections 52, 62, and 72 of each busbar may be arranged radially around the rotation axis A1.

[0063] 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. Furthermore, 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]

[0064] 2: Body, 4F: Front wheels, 4R: Rear wheels, 5F: Front drive shaft, 5R: Rear drive shaft, 6: Battery pack, 7: Power cable, 8: Rear suspension member, 10: Drive unit, 11: Casing, 20: Inverter unit, 21: Inverter casing, 22: Inverter, 24: Connection part, 30: Gear unit, 31: Gear casing, 32: Gear mechanism, 33: Left side bulkhead, 34: Link gear, 35: Through hole, 36: Differential gear, 40, 40A, 40B, 40C: Motor unit, 41: Motor casing, 42: Motor, 43: Right side bulkhead, 44: Rotor, 45F: First opening, 45S: Second opening, 45T: Third opening, 46: Stator core, 47: Motor shaft, 48: Stator coil, 48U: U-phase stator coil, 48V: V-phase stator coil, 48W: W-phase stator coil 49: Bearing, 50, 50A, 50B, 50C: First busbar, 51: First base, 52: First straight section, 54, 64, 74: First flat section, 55: First through hole, 56, 56A, 56B, 56C: First reinforcement section, 58, 68, 78: Second flat section, 59: First tip, 60: Second busbar, 61: Second base, 62: Second straight section, 65: Second through hole, 66: Second reinforcement section, 69: Second tip, 70: Third busbar 71: Third base end, 72: Third straight section, 75: Third through hole, 76: Third reinforcement section, 79: Third tip, 100: Electric vehicle, A1: Rotating shaft, B1: Bolt, D1: Recess, L1: Lubricant, R1: First reinforcing rib, R2: Second reinforcing rib, R3: Third reinforcing rib, R4: Fourth reinforcing rib, R5: Fifth reinforcing rib, S1: First sealing member, S2: Second sealing member, S3: Third sealing member, T1~T8: Thickness direction, WD1: Width direction

Claims

1. A rotatably supported rotor, A stator core facing the rotor in the radial direction, The stator coil provided on the stator core, A plate-shaped first busbar, whose base end is connected to the stator coil and which has a connecting terminal at its tip, A gear connected to the rotor that sprays lubricant, Equipped with, The first bus bar has a straight section that extends along a straight line, The straight section has a reinforced section in which the thickness direction of the first busbar changes along the width direction of the first busbar. The reinforced section of the first busbar has a recess facing the gear, Motor unit.

2. The straight section further comprises a first flat section in which the thickness direction of the first busbar is constant along the width direction of the first busbar. The motor unit according to claim 1, wherein the first flat section is located between the base end and the reinforced section.

3. The straight section further comprises a second flat section in which the thickness direction of the first busbar is constant along the width direction of the first busbar. The second flat section is located between the tip and the reinforced section, The motor unit according to claim 1.

4. It further comprises a casing with internal partitions, The base end of the first busbar is located on one side of the partition wall, The tip of the first busbar is located on the other side of the partition wall, The reinforcing section of the first busbar passes through an opening formed in the partition wall without contacting the partition wall. The motor unit according to claim 2.

5. The motor unit according to claim 1, wherein the straight section of the first busbar extends parallel to the rotation axis of the rotor.

6. The system further comprises a plate-shaped second busbar whose base end is connected to the stator coil and which has a connecting terminal at its tip, The second bus bar has a straight section that extends along a straight line, The straight section of the second bus extends parallel to the straight section of the first bus. The motor unit according to claim 1.

7. The motor unit according to claim 6, wherein the straight section of the second busbar has a reinforcing section in which the thickness direction of the second busbar changes along the width direction of the second busbar.

8. The casing further comprises a partition wall having an internal partition wall, the partition wall having a first opening and a second opening formed therein. The base end of the first busbar and the base end of the second busbar are located on one side of the partition wall. The tip of the first busbar and the tip of the second busbar are located on the other side of the partition wall. The reinforcing section of the first busbar passes through the first opening formed in the partition wall without contacting the partition wall. The reinforcing section of the second busbar passes through the second opening formed in the partition wall without contacting the partition wall. The motor unit according to claim 7.

9. The system further comprises a plate-shaped third busbar whose base end is connected to the stator coil and which has a connecting terminal at its tip, Each of the third busbars has a straight section extending along a straight line, The straight section of the third bus extends parallel to the straight section of the second bus. The motor unit according to claim 6.

10. The motor unit according to claim 9, wherein the straight section of the third busbar has a reinforcing section in which the thickness direction of the third busbar changes along the width direction of the third busbar.

11. The casing further comprises a partition wall having an internal partition wall, the partition wall having a first opening, a second opening, and a third opening formed therein. The base end of the first busbar, the base end of the second busbar, and the base end of the third busbar are located on one side of the partition wall. The tip of the first busbar, the tip of the second busbar, and the tip of the third busbar are located on the other side of the partition wall. The reinforcing section of the first busbar passes through the first opening formed in the partition wall without contacting the partition wall. The reinforcing section of the second busbar passes through the second opening formed in the partition wall without contacting the partition wall. The reinforcing section of the third busbar passes through the third opening formed in the partition wall without contacting the partition wall. The motor unit according to claim 10.

12. The motor unit according to claim 11, wherein the straight section of the first busbar, the straight section of the second busbar, and the straight section of the third busbar extend parallel to the rotation axis of the rotor.

13. The motor unit according to claim 12, wherein the straight-line section of the first busbar, the straight-line section of the second busbar, and the straight-line section of the third busbar are arranged along the circumferential direction with respect to the rotation axis.

14. The partition wall is provided with a first reinforcing rib located between the first opening and the second opening, and a second reinforcing rib located between the second opening and the third opening. The first reinforcing rib and the second reinforcing rib are arranged radially around the rotation axis of the rotor. The motor unit according to claim 13.

Citation Information

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