Drive unit

The drive device addresses inefficient cooling in electric vehicle units by employing a circumferentially extending busbar unit with openings for uniform fluid distribution, enhancing cooling efficiency and reducing electrical resistance.

JP7796510B2Active Publication Date: 2026-01-09NIDEC CORP(JP)
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Patent Information

Application Number
JP2021178103
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-29
Publication Date
2026-01-09
Estimated Expiration
2041-10-29

AI Technical Summary

Technical Problem

Existing drive units for electric vehicles face challenges in efficiently cooling the bus bars and stator due to the axial extension of the bus bar, which hinders uniform fluid supply to the coil ends, leading to poor cooling efficiency.

Method used

A drive device design featuring a rotor, stator, busbar unit, and fluid supply unit, where the busbar unit extends circumferentially along the stator's outer periphery with openings that facilitate fluid distribution to the stator and busbars, enhancing cooling efficiency.

Benefits of technology

The design allows for effective cooling of both the bus bars and stator, reducing electrical resistance and improving the drive device's efficiency by ensuring uniform fluid distribution and absorption of heat.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a drive device capable of efficiently cooling a busbar and a stator.SOLUTION: A drive device includes a rotor having a shaft that rotates about a central axis, a stator 2 arranged radially outside the rotor, a busbar unit 5 having a plurality of busbars 10 connected to the stator and a busbar holder 90 supporting the busbars, a fluid supply portion 95 provided with a supply hole 96 disposed radially outside the stator and supplying fluid to the stator, and a housing containing the rotor, the stator, the busbar unit, and the fluid supply portion, and the busbar unit extends circumferentially along the outer periphery of the stator and has an opening 5h that opens toward the stator.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a drive device. [Background technology]

[0002] In recent years, there has been active development of drive units for electric vehicles. Such drive units are equipped with a cooling structure for cooling the stator of a rotating electric machine. Patent Document 1 discloses a structure in which oil flowing out of a catch tank is guided by an oil guide portion of a bus bar and drips onto the rotating electric machine. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-60785 Summary of the Invention [Problem to be solved by the invention]

[0004] In a motor, the coil generates the most heat, so supplying fluid to the coil ends where the coil is exposed enables efficient cooling. However, because the bus bar in Patent Document 1 extends along the axial direction of the motor, when guiding fluid from the bus bar to the coil ends, it is difficult to supply fluid to the entire coil end, resulting in poor cooling efficiency.

[0005] In view of the above circumstances, one object of the present invention is to provide a drive device that can efficiently cool the bus bars and the stator. [Means for solving the problem]

[0006] One aspect of the drive device of the present invention includes a rotor having a shaft that rotates about a central axis, a stator arranged radially outward of the rotor, a busbar unit having a plurality of busbars connected to the stator and busbar holders that support the busbars, a fluid supply unit arranged radially outward of the stator and having a supply hole that supplies fluid to the stator, and a housing that accommodates the rotor, the stator, the busbar unit, and the fluid supply unit. The busbar unit extends circumferentially along an outer periphery of the stator and has an opening that opens toward the stator. [Effects of the Invention]

[0007] According to one aspect of the present invention, it is possible to provide a drive device that can efficiently cool the bus bars and the stator. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a cross-sectional view of a driving device according to an embodiment. [Figure 2] FIG. 2 is a perspective view of a stator according to one embodiment. [Figure 3] FIG. 3 is a schematic diagram showing a circuit of a winding section according to one embodiment. [Figure 4] FIG. 4 is a perspective view of a busbar unit according to an embodiment. [Figure 5] FIG. 5 is a perspective view of a neutral bus bar and a plurality of phase bus bars according to an embodiment. [Figure 6] FIG. 6 is a cross-sectional view of a fluid supply unit, a busbar unit, and a stator according to an embodiment. [Figure 7] FIG. 7 is a schematic cross-sectional view of the vicinity of the opening of the busbar unit of the first modification. [Figure 8] FIG. 8 is a schematic cross-sectional view of the vicinity of the opening of the busbar unit of the second modification. [Figure 9] FIG. 9 is a schematic cross-sectional view of the vicinity of the opening of the busbar unit of the third modification. [Figure 10]FIG. 10 is a schematic cross-sectional view of the vicinity of the opening of the busbar unit of the fourth modification. [Figure 11] FIG. 11 is a schematic cross-sectional view of the vicinity of the opening of the busbar unit of the fifth modification. DETAILED DESCRIPTION OF THE INVENTION

[0009] An embodiment of the drive device 1 will be described below with reference to the drawings. In the drawings, an XYZ coordinate system is shown as a three-dimensional Cartesian coordinate system as appropriate. The Z-axis direction shown in each drawing is the up-down direction, with the positive side being the "upper side" and the negative side being the "lower side." The central axis J shown in each drawing is parallel to the Y-axis direction. In the following description, the axial direction of the central axis J may be simply referred to as the "axial direction," the +Y side may be simply referred to as the "one axial side," and the -Y side may be simply referred to as the "other axial side." Furthermore, the radial direction centered on the central axis J may be simply referred to as the "radial direction." Furthermore, the circumferential direction centered on the central axis J may be simply referred to as the "circumferential direction," and the counterclockwise direction viewed from the +Y side may be simply referred to as the "one circumferential side θ1" and the clockwise direction viewed from the +Y side may be simply referred to as the "other circumferential side θ2."

[0010] Note that the terms "up-down direction," "upper side," and "lower side" are simply names used to describe the positional relationships of the various components, and the actual positional relationships may be other than those indicated by these names. Furthermore, the effects of the embodiments can be reproduced even if the directions described as one axial side and the other axial side are interchanged. Similarly, the effects of the embodiments can be reproduced even if the directions described as one circumferential side θ1 and the other circumferential side θ2 are interchanged.

[0011] <Drive unit> FIG. 1 is a schematic cross-sectional view of a drive device 1 according to this embodiment. The driving device 1 of this embodiment is an inner rotor type motor and a three-phase AC motor. Drive unit The driving device 1 functions both as a motor and as a generator. The center of the driving device 1 is a central axis J.

[0012] The drive device 1 includes a rotor 3, a stator 2, a busbar unit 5, a connecting busbar unit 7, a temperature sensor 8, a fluid supply unit 95, a housing 4, and a fluid O stored inside the housing 4.

[0013] <Housing> The housing 4 accommodates the rotor 3, the stator 2, the busbar unit 5, the connecting busbar unit 7, and a fluid supply unit 95. A fluid O accumulates in a lower region inside the housing 4. A flow path 9 is connected to the housing 4, and transfers the fluid O to the fluid supply unit 95 arranged in an upper region of the housing 4.

[0014] The housing 4 has a cylindrical portion 4b with a bottom plate portion 4a, and a bearing holder 4c that covers the opening of the cylindrical portion 4b. The cylindrical portion 4b is cylindrical and centered on the central axis J. The cylindrical portion 4b surrounds the stator 2 from the radial outside. The bottom plate portion 4a is located on the other axial side (-Y side) of the stator 2. On the other hand, the bearing holder 4c is located on one axial side (+Y side) of the stator 2. The bearing holder 4c and the bottom plate portion 4a each hold a bearing 3p.

[0015] <Rotor> The rotor 3 is rotatable about a central axis J. The rotor 3 is disposed radially inside the annular stator 2. In other words, the rotor 3 faces the stator 2 in the radial direction. The rotor 3 has a shaft 3a, a rotor magnet 3b, and a rotor core 3c.

[0016] The shaft 3a extends in the axial direction along the central axis J. The shaft 3a is, for example, cylindrical and extends in the axial direction around the central axis J. The shaft 3a rotates around the central axis J. The shaft 3a is rotatably supported by two bearings 3p.

[0017] The rotor core 3c is made by laminating electromagnetic steel sheets. The rotor core 3c is cylindrical and extends in the axial direction. The inner peripheral surface of the rotor core 3c is fixed to the outer peripheral surface of the shaft 3a. The rotor core 3c is provided with a retaining hole 3h into which the rotor magnet 3b is inserted and fixed.

[0018] The rotor magnet 3b faces the stator 2 in the radial direction. The rotor magnet 3b is held embedded in the rotor core 3c. The rotor magnet 3b in this embodiment has eight poles. The number of poles of the rotor 3 is not limited to this embodiment. The rotor magnet 3b may also be a magnet of another form, such as an annular ring magnet.

[0019] <Stator> The stator 2 faces the rotor 3 in the radial direction with a gap therebetween. In this embodiment, the stator 2 is disposed radially outside the rotor 3. The stator 2 includes a stator core 20 and a winding portion 30 attached to the stator core 20.

[0020] FIG. 2 is a perspective view of the stator 2 of the present embodiment. The stator core 20 is annular and centered on a central axis J. The stator core 20 is made of a plurality of electromagnetic steel plates laminated along the axial direction. The stator core 20 has a cylindrical core back portion 21 centered on the central axis J, and a plurality of teeth 22 extending radially inward from the core back portion 21.

[0021] The multiple teeth 22 are arranged at equal intervals in the circumferential direction. A winding 30 is attached to the teeth 22. A slot S is provided between adjacent teeth 22 in the circumferential direction. Multiple conductors of the winding 30 pass through the slot S. In the slot S, insulating paper (not shown) is interposed between the winding 30 and the stator core 20.

[0022] The core back portion 21 has a plurality of fixing portions 29 that protrude radially outward from the outer circumferential surface. The fixing portions 29 are fixed to the inner surface of the housing 4. That is, the stator 2 is fixed to the housing 4 at the fixing portions 29. A plurality of fixing portions 29 are provided at intervals from one another in the circumferential direction. For example, four fixing portions 29 are provided. The four fixing portions 29 are arranged at equal intervals over the entire circumferential direction.

[0023] In this embodiment, the fixing portion 29 extends in the axial direction over the entire length of the stator core 20. The fixing portion 29 is provided with an insertion hole 29a that passes through the fixing portion 29 in the axial direction. A bolt (not shown) that extends in the axial direction is passed through the insertion hole 29a. The bolt is passed through the insertion hole 29a and tightened into a screw hole (not shown) provided on the inner surface of the housing 4. The fixing portion 29 is fixed to the housing 4 by tightening the bolt into the screw hole.

[0024] The winding portion 30 has a first coil end 30e that protrudes to one axial side (+Y side) of the stator core 20, and a second coil end 30f that protrudes to the other axial side (-Y side) of the stator core 20.

[0025] FIG. 3 is a schematic diagram showing the circuit of the winding section 30 of this embodiment. The winding section 30 of this embodiment has two U-phase coil sections 60U, two V-phase coil sections 60V, and two W-phase coil sections 60W. In the following description, when there is no need to distinguish between the U-phase coil section 60U, the V-phase coil section 60V, and the W-phase coil section 60W, these will be simply referred to as coil sections 60.

[0026] The busbar unit 5 of this embodiment has three phase busbars 11, 12, and 13 and one neutral point busbar 10. The three phase busbars 11, 12, and 13 are classified into a U-phase busbar 11, a V-phase busbar 12, and a W-phase busbar 13.

[0027] The U-phase coil section 60U, the V-phase coil section 60V, and the W-phase coil section 60W are Y-connected by the neutral bus bar 10 and the phase bus bars 11, 12, and 13. In this embodiment, two Y-connections corresponding to the two coil sections 60 of each phase are configured, and the respective Y-connections are connected in parallel. That is, the winding section 30 is 2Y-connected by the bus bar unit 5.

[0028] The coil portion 60 has a first end portion 63 and a second end portion 64. The first end portion 63 and the second end portion 64 are provided at one end and the other end of the coil portion 60, respectively. The coil portion 60 is attached to the stator core 20 between the first end portion 63 and the second end portion 64 to form a coil for each phase. The coil portion 60 is connected to the busbar unit 5 at the first end portion 63 and the second end portion 64.

[0029] The second end portions 64 of the two U-phase coil portions 60U, the two V-phase coil portions 60V, and the two W-phase coil portions 60W are connected to one neutral point busbar 10. As a result, the second end portions 64 of the six coil portions 60 have the same potential and form a neutral point. In other words, the neutral point busbar 10 forms the neutral point of the three-phase circuit.

[0030] First end portions 63 of the two U-phase coil portions 60U are connected to the U-phase bus bar 11. First end portions 63 of the two V-phase coil portions 60V are connected to the V-phase bus bar 12. First end portions 63 of the two W-phase coil portions 60W are connected to the W-phase bus bar 13. AC currents with a phase shift of 120° flow through the phase bus bars 11, 12, and 13, respectively.

[0031] The coil portion 60 of this embodiment is formed by connecting rectangular wires in series. As shown in Fig. 2, the coil portion 60 is inserted into a plurality of slots S and arranged in a wave pattern. The coil portion 60 has a portion formed by wave winding the slots S on one circumferential side and a portion formed by wave winding the slots S on the other circumferential side. The wave wound portion on one circumferential side and the wave wound portion on the other circumferential side are connected by a connecting busbar unit 7.

[0032] <Connection bus bar unit> 2, the connecting busbar unit 7 is disposed on one axial side of the first coil end 30e. The connecting busbar unit 7 extends in the circumferential direction of the central axis J. The connecting busbar unit 7 is fixed to and supported by the busbar unit 5.

[0033] The connection busbar unit 7 of this embodiment has a plurality of connection busbars 15 that connect the conductors to each other at the radially inner end of the coil portion 60, and a connection busbar holder 80 that holds the plurality of connection busbars 15.

[0034] <Busbar unit> The busbar unit 5 is disposed radially outward of the first coil end 30e. The busbar unit 5 is located directly above the first coil end 30e. The busbar unit 5 extends in the circumferential direction about the central axis J. Therefore, the busbar unit 5 extends in the circumferential direction above the first coil end 30e along the outer periphery of the first coil end 30e. The busbar unit 5 is disposed on one axial side of the end face of the stator core 20 facing one axial side (+Y side).

[0035] Fig. 4 is a perspective view of the busbar unit 5. Fig. 5 is a perspective view of the neutral point busbar 10 and the plurality of phase busbars 11, 12, and 13.

[0036] As shown in Fig. 4, the busbar unit 5 has a plurality of busbars 10, 11, 12, and 13, and a busbar holder 90 that supports the busbars 10, 11, 12, and 13. The plurality of busbars 10, 11, 12, and 13 are connected to the stator 2 (see Fig. 1). The plurality of busbars 10, 11, 12, and 13 are classified into a neutral busbar 10 and three phase busbars 11, 12, and 13.

[0037] As shown in Fig. 5, the neutral busbar 10 and the phase busbars 11, 12, and 13 are plate-shaped. The neutral busbar 10 and the phase busbars 11, 12, and 13 are formed by press working. The neutral busbar 10 and the phase busbars 11, 12, and 13 extend in the circumferential direction.

[0038] The neutral point busbar 10 has a neutral point busbar main body 10a, a plurality of (six in this embodiment) neutral point connection portions 10b, and a plurality of (two in this embodiment) sensor attachment portions 10t.

[0039] When viewed from the axial direction, the neutral point busbar main body 10a extends in an arc shape centered on the central axis J. The thickness direction of the neutral point busbar main body 10a is the radial direction.

[0040] The neutral point busbar main body 10a is provided with a rectangular notch 10g that opens to the other axial side (-Y side). The notch 10g extends from the edge of the neutral point busbar main body 10a on the other axial side (-Y side) toward one axial side (+Y side).

[0041] The neutral point connection portion 10b protrudes from the neutral point busbar main body portion 10a toward one axial side (+Y side). Multiple neutral point connection portions 10b are arranged on the same circumference centered on the central axis J. The neutral point connection portions 10b extend in the axial direction (Y-axis direction) with a uniform width. The shapes of all of the neutral point connection portions 10b are the same. Each neutral point connection portion 10b is connected by a joining means such as welding to a second end portion 64 (see Figure 3) that extends radially outward from the first coil end 30e.

[0042] The sensor mounting portion 10t protrudes from the neutral point connection portion 10b to one axial side (+Y side). The sensor mounting portion 10t is bent so as to be offset radially outward from the neutral point connection portion 10b about the central axis J. As will be described later, a temperature sensor 8 is attached to the sensor mounting portion 10t.

[0043] The phase busbars 11, 12, and 13 each have a phase busbar main body 11a, 12a, and 13a, a plurality of (two in this embodiment) phase connection portions 11b, 12b, and 13b, extension portions 11c, 12c, and 13c, and external connection terminals 11d, 12d, and 13d.

[0044] Of the three phase bus bars 11, 12, and 13 in this embodiment, the U-phase bus bar 11 and the V-phase bus bar 12 have the same shape. This reduces the number of types of parts and reduces costs. However, the three phase bus bars 11, 12, and 13 may all have different shapes.

[0045] The phase busbar main bodies 11a, 12a, and 13a extend in the circumferential direction. At least a portion of each of the three phase busbar main bodies 11a, 12a, and 13a overlaps with the neutral point busbar 10 radially outward or axially.

[0046] The phase busbar main body 13a of the W-phase busbar 13 is disposed on the other axial side (-Y side) of the neutral point busbar main body 10a. The phase busbar main body 13a is located on the opening side of the notch 10g of the neutral point busbar main body 10a. In other words, the phase busbar main body 13a is disposed so as to cover the opening of the notch 10g.

[0047] In the phase busbars 11, 12, and 13, the phase connection portions 11b, 12b, and 13b protrude from the phase busbar main bodies 11a, 12a, and 13a toward one axial side (+Y side). The multiple phase connection portions 11b, 12b, and 13b are arranged on the same circumference about the central axis J. The phase connection portions 11b, 12b, and 13b extend in the axial direction (Y-axis direction) with a uniform width. All of the phase connection portions 11b, 12b, and 13b have the same shape. The phase connection portions 11b, 12b, and 13b and the neutral point connection portion 10b have the same shape. Each of the phase connection portions 11b, 12b, and 13b is joined by joining means such as welding to a first end portion 63 (see FIG. 3 ) that extends radially outward from the first coil end 30e.

[0048] The extension portions 11c, 12c, 13c of the phase busbars 11, 12, 13 extend from the end portions on one circumferential side θ1 of the respective phase busbar main bodies 11a, 12a, 12c toward one axial side (+Y side).

[0049] External connection terminals 11d, 12d, and 13d are arranged at the ends of extensions 11c, 12c, and 13c on one axial side (+Y side), respectively. External connection terminals 11d, 12d, and 13d extend along a plane perpendicular to the central axis J. External terminals (not shown) that apply U-phase, V-phase, and W-phase voltages are connected to external connection terminals 11d, 12d, and 13d, respectively.

[0050] As shown in Fig. 4, the busbar holder 90 embeds the neutral busbar 10 and portions of the phase busbars 11, 12, and 13. This allows the busbar holder 90 to hold the neutral busbar 10 and the phase busbars 11, 12, and 13. The busbar holder 90 is made of an insulating resin member. The busbar holder 90 is formed by insert molding, which embeds the neutral busbar 10 and the phase busbars 11, 12, and 13.

[0051] The bus bar holder 90 has a holder main body 91 and a plurality of (three in this embodiment) support pillars 92. The bus bar holder 90 is mounted on the core back portion 21 of the stator core 20. The bus bar holder 90 is fixed to the stator core 20, for example.

[0052] The support pillars 92 extend upward from the holder main body 91. The support pillars 92 embed the extending portions 11c, 12c, and 13c of the phase bus bars 11, 12, and 13. In this way, the support pillars 92 support the extending portions 11c, 12c, and 13c.

[0053] The neutral busbar main body 10a and the phase busbar main bodies 11a, 12a, and 13a are embedded in the holder main body 91. The sensor mounting portion 10t, the neutral connection portion 10b, and the phase connection portions 11b, 12b, and 13b are exposed from the end face of the holder main body 91 on one axial side (+Y side). That is, the sensor mounting portion 10t, the neutral connection portion 10b, and the phase connection portions 11b, 12b, and 13b protrude from the holder main body 91 on one axial side (+Y side).

[0054] The holder main body 91 has an opening 91a that exposes a portion of the neutral point busbar main body 10a in the vertical direction. The opening 91a is rectangular when viewed from above. A cutout 10g is provided in the portion of the neutral point busbar main body 10a exposed by the opening 91a. The busbar unit 5 penetrates radially inside the cutout 10g. The area surrounded by the cutout 10g and the opening 91a is referred to as a first opening (opening) 5h.

[0055] The holder main body 91 is also provided with a holder notch 91p recessed downward from the upper edge. In this embodiment, the holder notch 91p is disposed between the phase connection portion 13b and the neutral point connection portion 10b in the circumferential direction. That is, the busbar unit 5 opens radially inside the holder notch 91p. Here, the area inside the holder notch 91p is referred to as a second opening (opening) 5k.

[0056] The busbar unit 5 has two openings 5h, 5k that open radially inward and outward. The openings 5h, 5k include a first opening 5h and a second opening 5k. The first opening 5h and the second opening 5k are aligned in the circumferential direction of the central axis J. In this embodiment, the busbar unit 5 is described as having two openings 5h and 5k, but the number of openings is not limited to this. There may be at least one opening, and there may be three or more openings.

[0057] <Temperature sensor> 4, two temperature sensors 8 are attached to the busbar unit 5. The temperature sensors 8 are attached to sensor attachment portions 10t of the neutral point busbar 10. The temperature sensors 8 have wiring 8c that extends to a control device (not shown).

[0058] A sensor attachment portion 10t of the neutral point busbar 10 is exposed from the busbar holder 90. The temperature sensor 8 is in direct contact with the neutral point busbar 10 at the sensor attachment portion 10t, and measures the temperature of the neutral point busbar 10.

[0059] In the following description, of the two temperature sensors 8, one arranged on one circumferential side θ1 will be referred to as the first temperature sensor 8a, and the other arranged on the other circumferential side will be referred to as the second temperature sensor 8b. Similarly, in the following description, the sensor mounting portion 10t to which the first temperature sensor 8a is attached will be referred to as the first sensor mounting portion 10ta, and the sensor mounting portion 10t to which the second temperature sensor 8b is attached will be referred to as the second sensor mounting portion 10tb.

[0060] In this embodiment, a case will be described in which the temperature sensor 8 is attached to the neutral bus bar 10. However, the temperature sensor 8 may be attached to any of the phase bus bars 11, 12, and 13. In other words, it is sufficient that at least one of the multiple bus bars 10, 11, 12, and 13 has the sensor attachment portion 10t.

[0061] <Fluid supply section> As shown in FIG. 1, the fluid supply unit 95 has a pipe shape extending along the axial direction of the central axis J. The fluid supply unit 95 is disposed inside the housing 4. The fluid supply unit 95 is located radially outside the stator 2 and directly above the stator 2. In the fluid supply unit 95, the fluid O flows from the end on the other axial side (-Y side) toward one axial side (+Y side). The flow of the fluid O in the fluid supply unit 95 may be in the opposite direction to that in this embodiment. In this specification, "directly above" means arranged above and overlapping when viewed from the vertical direction.

[0062] The other axial end (-Y side) of the fluid supply unit 95 is connected to the flow path 9. The flow path 9 sucks up the fluid O that accumulates inside the housing 4 and sends it to the fluid supply unit 95. A pump and a cooler (not shown) are arranged in the path of the flow path 9. The pump pumps the fluid O in the flow path 9. Meanwhile, the cooler cools the fluid in the flow path 9.

[0063] The fluid supply portion 95 is provided with a plurality of supply holes 96, 97, 98 that supply fluid O to the stator 2. The plurality of supply holes 96, 97, 98 are aligned in the axial direction. The plurality of supply holes 96, 97, 98 are holes that penetrate the pipes that make up the fluid supply portion 95 in the thickness direction. The openings of the supply holes 96, 97, 98 face toward the stator 2. Of the plurality of supply holes 96, 97, 98, some of the supply holes 96 are positioned directly above the first coil ends 30e, some of the supply holes 97 are positioned directly above the second coil ends 30f, and the remaining supply holes 98 are positioned directly above the stator core 20.

[0064] The busbar unit 5 is disposed between the first coil end 30e and the supply hole 96 disposed directly above the first coil end 30e. The supply hole 96 supplies the fluid O to the first coil end 30e by passing through the busbar unit 5. Therefore, the fluid O supplied from the supply hole 96 cools not only the first coil end 30e but also the busbar unit 5.

[0065] Supply holes 97 arranged directly above second coil ends 30f supply fluid O to second coil ends 30f. Furthermore, supply holes 98 arranged directly above stator core 20 supply fluid O to the outer peripheral surface of stator core 20.

[0066] FIG. 6 is a cross-sectional view of the fluid supply portion 95, the busbar unit 5, and the stator 2 of this embodiment. At least a portion of the fluid supply unit 95 is disposed directly above the busbar unit 5. Two supply holes 96 are provided in the portion of the fluid supply unit 95 located directly above the busbar unit 5. In the following description, one of the two supply holes 96 is referred to as a first supply hole 96a, and the other is referred to as a second supply hole 96b. That is, the supply holes 96 include the first supply hole 96a and the second supply hole 96b.

[0067] The first opening 5h and the second opening 5k of the busbar unit 5 are arranged side by side in the circumferential direction. As described above, the first opening 5h and the second opening 5k are open in the radial direction of the central axis J. That is, the first opening 5h and the second opening 5k are open toward the stator 2. In this embodiment, the busbar unit 5 is arranged above the stator 2. Therefore, the first opening 5h and the second opening 5k are open to the upper and lower sides.

[0068] The first opening 5h is disposed in the opening direction of the first supply hole 96a. Therefore, at least a portion of the fluid O ejected from the first supply hole 96a reaches the first opening 5h. As described above, the first opening 5h opens toward the stator 2, and therefore, the fluid O that reaches the first opening 5h is supplied to the stator 2.

[0069] In this embodiment, the first openings 5h are disposed directly above the central axis J. The outer periphery of the stator 2 extends in an arc shape centered on the central axis J, and therefore reaches its highest point directly above the central axis J. The fluid O dripping downward from the first openings 5h is supplied to the highest part of the stator 2 and flows to both sides of the stator 2 in the circumferential direction.

[0070] The second opening 5k is disposed in the opening direction of the second supply hole 96b. Therefore, at least a portion of the fluid O ejected from the second supply hole 96b reaches the second opening 5k. The fluid O that reaches the second opening 5k is supplied to the stator 2.

[0071] According to this embodiment, the first opening 5h and the second opening 5k open on the stator 2 side, allowing the fluid O supplied from the fluid supply unit 95 to the stator 2 side to pass through. This allows the fluid O to cool not only the stator 2 but also the busbar unit 5. The neutral busbar 10 and the phase busbars 11, 12, and 13 of the busbar unit 5 increase in electrical resistance when they become hot due to heat transferred from the winding unit 30 and Joule heat. Cooling the busbar unit 5 reduces the electrical resistance of the neutral busbar 10 and the phase busbars 11, 12, and 13, thereby improving the driving efficiency of the drive device 1.

[0072] In this embodiment, the busbar units 5 extend in the circumferential direction along the outer periphery of the stator 2. Therefore, when the fluid O is ejected in the circumferential direction from the supply holes 96, the circumferentially extending busbar units 5 receive the scattered fluid O and can cool the entire busbar units 5. As a result, the fluid O can be effectively used to improve the cooling efficiency of the busbar units 5.

[0073] According to the present embodiment, since the busbar unit 5 extends in the circumferential direction, the fluid O supplied to the busbar unit 5 from the supply holes 96 can be easily guided along the circumferential direction to the first openings 5h or the second openings 5k. In the process of being guided in the circumferential direction by the busbar unit 5, the fluid O absorbs heat from the busbar unit 5, thereby efficiently cooling the busbar unit 5.

[0074] According to this embodiment, the first openings 5h and the second openings 5k are provided in the busbar unit 5, so that the fluid O can be supplied in a concentrated manner to areas directly below the first openings 5h and the second openings 5k. As described above, the first openings 5h are positioned directly above the central axis J, so the fluid O passing through the first openings 5h is supplied to the highest position of the stator 2 (more specifically, the first coil end 30e). The fluid O supplied to the stator 2 from the first openings 5h flows approximately evenly on both circumferential sides of the first coil end 30e, efficiently cooling the stator 2 along the circumferential direction.

[0075] The busbar unit 5 of this embodiment has a connection flow path 6 that connects the first supply holes 96a and the first openings 5h. The connection flow path 6 of this embodiment is recessed radially inward from the central axis J and vertically downward. The connection flow path 6 of this embodiment extends in a groove-like shape on the radially outer surface of the busbar unit 5 in a direction perpendicular to the axial direction of the central axis J. More specifically, the connection flow path 6 is a groove-like shape that opens radially outward and extends in the circumferential direction. The connection flow path 6 guides the fluid O ejected from the first supply holes 96a to the first openings 5h.

[0076] The connection flow path 6 has a wall 6a and a bottom 6b. The wall 6a extends upward from the bottom 6b. The wall 6a surrounds the bottom 6b. The wall 6a is the inner surface of the open portion 91a of the busbar holder 90. The bottom 6b faces upward. A first opening 5h is provided in the bottom 6b. In this embodiment, the bottom 6b is the surface of the neutral busbar 10 exposed by the open portion 91a.

[0077] According to this embodiment, the busbar unit 5 has the connection flow passage 6. Therefore, the busbar unit 5 receives the fluid O ejected from the first supply holes 96a within a large area in which the connection flow passage 6 is provided and guides the fluid O to the first openings 5h. According to this embodiment, a larger amount of the fluid O can be guided to the first openings 5h and supplied to a desired position on the stator 2, thereby improving the cooling efficiency of the stator 2.

[0078] The connection flow passage 6 of this embodiment extends in a groove-like shape in a direction perpendicular to the axial direction on the radially outer surface of the busbar unit 5. The connection flow passage of this embodiment allows the fluid O to flow in a direction perpendicular to the axial direction (in this embodiment, the circumferential direction). This allows the fluid O ejected from the first supply holes 96a in a direction perpendicular to the axial direction to be efficiently received by the connection flow passage 6. Furthermore, in the process of guiding the fluid O to the first opening 5h by the groove-shaped connection flow passage 6, the wall portion 6a and the bottom portion 6b of the connection flow passage 6 can be cooled, allowing the busbar unit 5 to be efficiently cooled.

[0079] The connection flow path 6 of this embodiment is recessed vertically downward. Therefore, the connection flow path 6 can store the fluid O. The connection flow path 6 of this embodiment temporarily stores the fluid O when, for example, the amount of fluid O supplied from the first supply hole 96a to the connection flow path 6 is greater than the flow rate at which the fluid O can drip from the first opening 5h. This allows the fluid O to continue to be supplied from the busbar unit 5 to the stator 2 for a long period of time even after the supply of the fluid O from the supply hole 96 has stopped. In other words, even after the drive device 1 has stopped, the stator 2 can continue to be cooled in preparation for restart. In addition, by storing the fluid O in the fluid supply unit 95, the stored fluid O can cool the busbar unit 5.

[0080] In this embodiment, the neutral point busbar 10 is exposed at the bottom 6b of the connection flow path 6. Therefore, the fluid O comes into contact with the neutral point busbar 10 while flowing through the connection flow path 6. According to this embodiment, the fluid O can directly cool the neutral point busbar 10.

[0081] As shown in FIG. 4, the portions of the wall 6a surrounding the first opening 5h are designated as a first side wall 6p, a second side wall 6q, and a third side wall 6r. The first side wall 6p is disposed on one axial side (+Y side) of the first opening 5h. The second side wall 6q is disposed on the other axial side (-Y side) of the first opening 5h and faces the first side wall 6p. The third side wall 6r is disposed on one circumferential side of the first opening 5h and connects the first side wall 6p and the second side wall 6q.

[0082] The first side wall 6p is formed by an end face facing the other axial side (-Y side) of the support portion 92 of the bus bar holder 90. The extension portion 11c of the U-phase bus bar 11 is embedded inside the support portion 92. According to this embodiment, the U-phase bus bar 11 can be cooled by the fluid O that accumulates in the connection flow path 6.

[0083] The second side wall 6q protrudes radially outward from the outer peripheral surface of the bus bar holder 90. Two ribs 91c are provided on the surface of the second side wall 6q on the other axial side (-Y side). The ribs 91c reinforce the second side wall 6q.

[0084] 6, the third side wall 6r is disposed opposite the opening direction of the first supply hole 96a. According to this embodiment, the third side wall 6r receives the fluid O ejected from the first supply hole 96a and prevents the fluid O from scattering from the connection flow path 6. This allows a larger amount of fluid to be guided to the first opening 5h.

[0085] The bottom 6b is provided with an inclined portion 6c that slopes vertically downward from the first supply hole 96a toward the first opening 5h. The inclined portion 6c faces the third side wall 6r in the circumferential direction. The connection flow path 6 is recessed downward in an area surrounded by the wall 6a (i.e., the first side wall 6p, the second side wall 6q, and the third side wall 6r shown in FIG. 4) and the inclined portion 6c, and stores the fluid O.

[0086] According to this embodiment, the bottom 6b of the connecting flow path 6 is provided with an inclined portion 6c that slopes vertically downward toward the first opening 5h, so that the fluid O that has accumulated in the connecting flow path 6 can be guided toward the first opening 5h. This makes it possible to prevent the fluid O from accumulating in the connecting flow path 6.

[0087] 6, when viewed in the axial direction of the central axis J, a straight line connecting the first supply hole 96a and the first opening 5h is defined as a first imaginary line VL1, and a straight line connecting the second supply hole 96b and the second opening 5k is defined as a second imaginary line VL2. The first supply hole 96a ejects the fluid O along the first imaginary line VL1, thereby efficiently guiding the fluid O to the first opening 5h. Similarly, the second supply hole 96b ejects the fluid O along the second imaginary line VL2, thereby efficiently guiding the fluid O to the second opening 5k.

[0088] The first sensor mounting portion 10ta and the first temperature sensor 8a of this embodiment are disposed directly below the fluid supply portion 95. The second temperature sensor mounting portion 10tb and the second temperature sensor 8b of this embodiment are provided at positions different from the first imaginary line VL1 and the second imaginary line VL2 and do not overlap with the first imaginary line VL1 and the second imaginary line VL2 when viewed from the axial direction.

[0089] According to the present embodiment, the first temperature sensor 8a and the second temperature sensor 8b are not disposed in the ejection path of the fluid O ejected from the first supply hole 96a and the second supply hole 96b, and are not directly cooled by the fluid O. As a result, it is possible to prevent the temperature sensor 8 from measuring the temperature of the fluid O, and it is possible to accurately measure the temperature of the busbar unit 5.

[0090] In this embodiment, the first sensor attachment portion 10ta and the first temperature sensor 8a are disposed between a first imaginary line VL1 and a second imaginary line VL2 when viewed in the axial direction. The first temperature sensor 8a measures the temperature of the busbar unit 5 between a portion cooled by the fluid O supplied from the first supply hole 96a and a portion cooled by the fluid O supplied from the second supply hole 96b. This allows the first temperature sensor 8a to measure the temperature of the busbar unit 5 that reflects the cooling by the fluid O, and allows the cooling efficiency due to the supply of the fluid O to be observed over time.

[0091] In this embodiment, the first sensor mounting portion 10ta and the first temperature sensor 8a are located between circumferentially adjacent fixing portions 29 when viewed in the axial direction. According to this embodiment, interference between the temperature sensor 8 and the fixing portions 29 can be suppressed during the assembly process of the drive device 1, and a highly reliable drive device 1 can be provided.

[0092] <Modification of opening> Next, the configurations of the openings of modified examples that can be employed in the above-described embodiment will be described. The openings of the respective modified examples can be employed in place of the first opening 5h or the second opening 5k of the above-described embodiment. In the following description of each modification, the same components as those in the embodiment and modification already described will be denoted by the same reference numerals, and the description thereof will be omitted.

[0093] (Variation 1) FIG. 7 is a schematic cross-sectional view of the vicinity of opening 105h of busbar unit 105 of Modification 1. As shown in FIG. Busbar unit 105 of this modification includes busbar 110 and busbar holder 190 in which busbar 110 is embedded. Busbar 110 has a first through hole 110a, and busbar holder 190 has a second through hole 190a. First through hole 110a and second through hole 190a overlap when viewed in the thickness direction of busbar unit 105.

[0094] First through hole 110a and second through hole 190a form opening 105h. That is, busbar unit 105 has opening 105h. In this modification, opening 105h is provided in a portion where busbar 110 and busbar holder 190 overlap. Therefore, busbar 110 and busbar holder 190 are exposed on the inner surface of opening 105h. According to this modification, busbar 110 and busbar holder 190 can be directly cooled by fluid O passing through opening 105h.

[0095] The bus bar holder 190 has a connecting flow path 106 that connects the supply hole 96 (see FIG. 6) and the opening 105h. The connecting flow path 106 is recessed vertically downward, so that it can store the fluid O. The connecting flow path 106 has a bottom 106b and a wall 106a. The bottom 106b is provided with the opening 105h. The wall 106a surrounds the opening 105h.

[0096] Bottom portion 106b and wall portion 106a are part of the surface of bus bar holder 190. Wall portion 106a protrudes from outer peripheral surface 190f of bus bar holder 190. According to this modification, the shape, height, etc. of wall portion 106a can be configured relatively freely.

[0097] (Variation 2) FIG. 8 is a schematic cross-sectional view of the vicinity of opening 205h of busbar unit 205 of Modification 2. As shown in FIG. Busbar unit 205 of this modification includes busbar 210 and busbar holder 290 in which busbar 210 is embedded. Busbar 210 has a first through hole 210a, and busbar holder 290 has a second through hole 290a. First through hole 210a and second through hole 290a overlap when viewed in the thickness direction of busbar unit 205.

[0098] First through hole 210a and second through hole 290a form opening 205h. That is, busbar unit 205 has opening 205h. In this modification, opening 205h is provided in a portion where busbar 210 and busbar holder 290 overlap. Therefore, busbar 210 and busbar holder 290 are exposed on the inner surface of opening 205h. According to this modification, busbar 210 and busbar holder 290 can be directly cooled by fluid O passing through opening 205h.

[0099] The bus bar holder 290 has a connecting flow path 206 that connects the supply hole 96 (see FIG. 6) and the opening 205h. The connecting flow path 206 is recessed vertically downward, so that the fluid O can be stored therein. The connecting flow path 206 has a bottom 206b and a wall 206a. The bottom 206b is provided with the opening 205h. The wall 206a surrounds the opening 205h.

[0100] Bottom portion 206b and wall portion 206a are part of the surface of bus bar holder 290. Wall portion 206a is the inner surface of recess 290j that is recessed downward relative to outer peripheral surface 290f of bus bar holder 290. According to the present embodiment, wall portion 206a does not protrude from outer peripheral surface 290f of bus bar unit 205, which makes it easy to reduce the thickness of bus bar unit 205.

[0101] (Variation 3) FIG. 9 is a schematic cross-sectional view of the vicinity of opening 305h of busbar unit 305 of Modification 3. As shown in FIG. Busbar unit 305 of this modification includes busbar 310 and busbar holder 390 in which busbar 310 is embedded. Busbar 310 has first through-hole 310a, and busbar holder 390 has second through-hole 390a.

[0102] In this modification, the busbar 310 protrudes inward from the inner surface of the second through hole 390a of the busbar holder 390. The first through hole 310a and the second through hole 390a overlap when viewed in the thickness direction of the busbar unit 305. Therefore, the first through hole 310a is contained within the second through hole 390a when viewed in the thickness direction of the busbar unit 305.

[0103] The first through-hole 310a forms an opening 305h. That is, the busbar unit 305 has the opening 305h. In this modification, the opening 305h is provided in a portion where the busbar holder 390 is not disposed but where the busbar 310 is disposed. Therefore, only the busbar 310 is exposed to the inner surface of the opening 305h. According to this modification, the fluid O passing through the opening 305h effectively cools the busbar 310.

[0104] The bus bar holder 390 has a connecting flow path 306 that connects the supply hole 96 (see FIG. 6) and the opening 305h. The connecting flow path 306 is recessed vertically downward, so that the fluid O can be stored therein. The connecting flow path 306 has a bottom 306b and a wall 306a. The bottom 306b is provided with the opening 305h. The wall 306a surrounds the opening 305h.

[0105] In this modification, bottom portion 306b is a part of the surface of bus bar 310. On the other hand, wall portion 306a in this modification is a part of the surface of bus bar holder 390, and is the inner surface of second through hole 390a. According to this modification, bus bar 310 can be directly cooled by fluid O accumulated in connection flow path 306.

[0106] (Variation 4) FIG. 10 is a schematic cross-sectional view of the vicinity of opening 405h of busbar unit 405 of modification 4. As shown in FIG. Busbar unit 405 of this modified example includes busbar 410 and busbar holder 490 in which busbar 410 is embedded. Busbar 410 protrudes and is exposed from the outer edge of busbar holder 490. Busbar 410 has opening 405h in the portion exposed from busbar holder 490. In other words, busbar unit 405 has opening 405h.

[0107] Opening 405h in this modification is provided in a portion where bus bar holder 490 is not disposed but bus bar 410 is disposed. Therefore, only bus bar 410 is exposed to the inner surface of opening 405h. According to this modification, fluid O passing through opening 405h effectively cools bus bar 410.

[0108] (Variation 5) FIG. 11 is a schematic cross-sectional view of the vicinity of opening 505h of busbar unit 505 of modified example 5. As shown in FIG. Busbar unit 505 of this modification includes busbar 510 and busbar holder 590 in which busbar 510 is embedded. Busbar holder 590 has opening 505h in a portion that protrudes beyond the outer edge of busbar 510. That is, busbar unit 505 has opening 505h.

[0109] Opening 505h in this modification is provided in a portion where bus bar 510 is not arranged but where bus bar holder 590 is arranged. Therefore, only bus bar holder 590 is exposed on the inner surface of opening 505h. According to this modification, because opening 505h is formed by bus bar holder 590, the shape of opening 505h can be configured relatively freely.

[0110] While the embodiments and modifications of the present invention have been described above, the configurations and combinations thereof in the embodiments and modifications are merely examples, and additions, omissions, substitutions, and other modifications of the configurations are possible without departing from the spirit of the present invention. Furthermore, the present invention is not limited to the embodiments.

[0111] For example, in the above-described embodiment, the fluid supply unit is described as being pipe-shaped. However, the fluid supply unit may be configured to supply fluid toward the stator, and may be, for example, a gutter with a supply hole provided at the bottom. [Explanation of symbols]

[0112] 1...drive unit, 2...stator, 3...rotor, 3a...shaft, 4...housing, 5,105,205,305,405,505...busbar unit, 105h,205h,305h,405h,505h...opening, 5h...first opening (opening), 5k...second opening (opening), 6,106,206,306...connecting flow path, 6a,106a,206a,306a...wall portion, 6b,106b,206b,306b...bottom, 6c...inclined portion, 8...temperature sensor, 9...flow path, 10,110, 210, 310, 410, 510...busbars, 10...neutral point busbar (busbar), 10t, 10ta, 10tb...sensor mounting portion, 11, 12, 13...phase busbar (busbar), 20...stator core, 29...fixing portion, 30...winding portion, 90, 190, 290, 390, 490, 590...busbar holder, 95...fluid supply portion, 96, 97, 98...supply hole, 96a...first supply hole, 96b...second supply hole, J...center axis, O...fluid, VL1...first virtual line, VL2...second virtual line

Claims

1. a rotor having a shaft that rotates about a central axis; a stator disposed radially outside the rotor; a busbar unit including a plurality of busbars connected to the stator and a busbar holder supporting the busbars; a fluid supply portion disposed radially outside the stator and having a supply hole for supplying fluid to the stator; a housing that accommodates the rotor, the stator, the bus bar unit, and the fluid supply unit, the stator has a stator core and a winding portion attached to the stator core, The winding portion has a coil end that protrudes from the stator core in the axial direction, the busbar unit extends in a circumferential direction along an outer periphery of the coil end and has an opening that opens toward the coil end, The bus bar is exposed on an inner surface of the opening.

2. The drive device according to claim 1 , wherein the busbar unit has a connecting flow path that connects the supply hole and the opening.

3. the connecting flow passage extends in a groove shape in a direction perpendicular to the axial direction on a radially outer surface of the busbar unit, The drive unit according to claim 2 , wherein the connecting flow path has a wall portion and a bottom portion in which the opening is provided.

4. The connecting flow path is recessed vertically downward when viewed in the axial direction, The drive device according to claim 2 or 3, wherein the connecting flow path has a wall portion and a bottom portion in which the opening is provided.

5. the supply hole is disposed vertically above the opening, a bottom portion of the connecting flow path is provided with an inclined portion that slopes vertically downward from the supply hole toward the opening; The drive device according to any one of claims 2 to 4.

6. Equipped with a temperature sensor, the supply holes include a first supply hole and a second supply hole; the opening includes a first opening and a second opening; At least one of the bus bars has a sensor attachment portion to which the temperature sensor is fixed, The drive device according to any one of claims 1 to 3, wherein the sensor mounting portion is positioned, when viewed in the axial direction, between a first imaginary line connecting the first supply hole and the first opening and a second imaginary line connecting the second supply hole and the second opening.

7. The stator includes: an annular stator core centered on a central axis; a winding portion attached to the stator core, the stator core has a plurality of fixing portions that protrude radially outward and are fixed to the housing, The sensor attachment portion is located between the fixing portions adjacent to each other in the circumferential direction when viewed from the axial direction. The drive device according to claim 6.

8. The drive device according to claim 1 , wherein the opening is provided in a portion where the bus bar and the bus bar holder overlap.

9. the opening is provided in a portion where the bus bar holder is not disposed but where the bus bar is disposed. The drive device according to any one of claims 1 to 7.

10. the opening is provided in a portion where the bus bar is not disposed but where the bus bar holder is disposed. The drive device according to any one of claims 1 to 7.

Citation Information

Patent Citations

  • Rotary electric machine

    JP2010045892A

  • Electric rotating machine

    JP2011135698A

  • Cooling structure of vehicle driving apparatus

    JP2012060785A

  • Drive device

    JP2021136849A

  • Cooling system for electric motor components

    US20210273512A1