Rotary electric machine and vehicle drive device
The rotating electric machine design with separate oil supply and regulating member effectively addresses cooling inefficiencies by improving cooling performance of both rotor and stator coils, facilitating heat recovery in electric vehicles.
Patent Information
- Application Number
- JP2024026761
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-26
- Publication Date
- 2025-09-05
AI Technical Summary
The cooling capacity of stator coils in rotating electric machines is reduced due to heat exchange with rotor coils, especially in smaller machines with reduced oil volumes, leading to inadequate cooling performance.
A rotating electric machine design with separate oil supply units for the rotor and stator coils, and a regulating member to restrict the flow of heated oil between coil end portions, ensuring effective cooling of both coils.
Enhances cooling performance of both rotor and stator coils by preventing heat transfer between them, allowing for efficient heat recovery and utilization in electric vehicles.
Smart Images

Figure 2025129845000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a rotating electric machine and a vehicle drive device. [Background technology]
[0002] International Publication No. 2023 / 074705 discloses an electrically excited synchronous motor (EESM) that serves as a driving force source for wheels. Hereinafter, in the background art, reference numerals in parentheses refer to the referenced documents. In an EESM, both the stator and the rotor have coils through which current flows. Because both the stator coil and the rotor coil generate heat when current flows through them, they are often equipped with cooling means. This publication describes supplying oil to rotor coil end portions (3161, 3162), which are the axial (X) ends of the rotor coil (316), and stator coil end portions (3221, 3222), which are the axial (X) ends of the stator coil (322), for cooling (see Figures 8 to 10, etc., of this publication).
[0003] Specifically, the rotor coil end portions (3161, 3162) are supplied with oil guided radially outward from the hollow interior (3145) of the rotor shaft (314) radially inward from the rotor coil end portions (3161, 3162) by centrifugal force caused by rotation of the rotor (310), and oil ejected axially from an oil passage formed in the case. The stator coil end portions (3221, 3222) are supplied with oil that has cooled the rotor coil end portions (3161, 3162) and oil that is further guided radially outward by centrifugal force. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] International Publication No. 2023 / 074705 Summary of the Invention [Problem to be solved by the invention]
[0005] When oil is supplied as described above, the oil supplied to the stator coil end portion has a reduced heat capacity that can be absorbed by the stator coil end portion due to heat exchange with the rotor coil end portion. This may result in a decrease in the cooling capacity for the stator coil. For example, as rotating electrical machines become smaller and the amount of oil used for cooling decreases, the heat capacity of the oil also decreases, making the cooling capacity more likely to decrease.
[0006] In view of the above background, it is desirable to provide a technique that can appropriately cool both the rotor and stator coils of a wound-field type rotating electric machine. [Means for solving the problem]
[0007] In view of the above, a rotating electric machine is provided which includes a stator having a stator coil, a rotor having a rotor coil, and a case that houses the stator and the rotor, with the direction along the rotation axis of the rotor being the axial direction and the direction perpendicular to the axial direction being the radial direction, and the rotor being arranged radially inside the stator, wherein the axial end of the stator coil is a stator coil end portion, the axial end of the rotor coil is a rotor coil end portion, and a regulating member that regulates the flow of oil in the radial direction between the stator coil end portion and the rotor coil end portion is arranged radially between the stator coil end portion and the rotor coil end portion, and the rotating electric machine is provided with a first oil supply unit that supplies oil to the stator coil end portion from the radial outside of the regulating member, and a second oil supply unit that supplies oil to the rotor coil end portion from the axial outside of the rotor coil end portion.
[0008] According to this configuration, cooling oil can be supplied separately to the coil end portions of both the rotor and the stator of a wound-field rotating electric machine. Furthermore, according to this configuration, a restricting member is disposed radially between the stator coil end portion and the rotor coil end portion, thereby restricting oil that has cooled the stator coil end portion and become hot from flowing toward the rotor coil end portion, and restricting oil that has cooled the rotor coil end portion and become hot from flowing toward the stator coil end portion. Therefore, according to this configuration, the stator coil end portion and the rotor coil end portion can be effectively cooled separately, making it easier to improve the cooling performance of the stator coil and the rotor coil. In other words, according to this configuration, a technology can be provided that can appropriately cool both the rotor and the stator coils of a wound-field rotating electric machine.
[0009] Further features and advantages of the rotating electrical machine will become apparent from the following description of exemplary, non-limiting embodiments which are given with reference to the drawings. [Brief explanation of the drawings]
[0010] [Figure 1] Schematic exploded perspective view of a vehicle drive device [Figure 2] Skeleton diagram of a vehicle drive system [Figure 3] 1 is a side view (front view) of a vehicle drive device from a first side in a front-rear direction; [Figure 4] 1 is a schematic cross-sectional view of the vicinity of a rotor coil end portion and a stator coil end portion on a first axial side; [Figure 5] FIG. 2 is a schematic perspective view of the vicinity of a rotor coil end portion and a stator coil end portion on a first axial side; [Figure 6] FIG. 10 is an explanatory diagram illustrating the arrangement positions of a first oil discharge passage and a second oil discharge passage; [Figure 7] FIG. 10 is an explanatory diagram illustrating the arrangement positions of a first oil discharge passage and a second oil discharge passage; DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, embodiments of a rotating electric machine and a vehicle drive device including the rotating electric machine will be described with reference to the drawings. Fig. 1 is a schematic exploded perspective view of a vehicle drive device 10. Note that some members, such as a part of a cover member that configures a case 9, are omitted from this exploded perspective view. Fig. 2 is a skeleton diagram of the vehicle drive device 10.
[0012] In the following description, the term "driving connection" refers to a state in which two rotating elements are connected so as to be able to transmit a driving force, and includes a state in which the two rotating elements are connected so as to rotate integrally, or a state in which the two rotating elements are connected so as to be able to transmit a driving force via one or more transmission members. Such transmission members include various members that transmit rotation at the same speed or at variable speeds, such as shafts, gear mechanisms, belts, and chains. Note that transmission members may also include engagement devices that selectively transmit rotation and driving force, such as friction engagement devices and meshing engagement devices. However, when the term "driving connection" is used to refer to each rotating element of a planetary gear mechanism, it refers to a state in which multiple rotating elements in the planetary gear mechanism are connected to each other without passing through other rotating elements.
[0013] As shown in FIGS. 1 and 2 , a vehicle drive device 10 includes a rotating electric machine 1, an input member 2, a counter gear mechanism 3, a differential gear mechanism 4, and a case 9. The case 9 houses the rotating electric machine 1, the input member 2, the counter gear mechanism 3, and the differential gear mechanism 4. The input member 2 is connected to the rotor 11 of the rotating electric machine 1 so as to rotate integrally with the rotor 11. In this embodiment, the input member 2 is spline-coupled to a rotor shaft 20 connected to the rotor 11, and rotates integrally with the rotor 11 and the rotor shaft 20. Note that the rotor shaft 20 and the input member 2 may be the same member. The differential gear mechanism 4 distributes the driving force transmitted from the rotating electric machine 1 to a pair of output members drivingly connected to a pair of wheels W. Although details will be described later, in this embodiment, a pair of differential side gears 45 of the differential gear mechanism 4 correspond to the output members.
[0014] The vehicle drive device 10 includes a speed reduction mechanism that reduces the rotation of the input member 2 and transmits the reduced rotation to a differential case 42 of the differential gear mechanism 4. As shown in FIG. 2 , in this embodiment, the speed reduction mechanism includes an input gear 21, a counter gear mechanism 3, and a differential input gear 41. The input gear 21 is connected to the input member 2 so as to rotate integrally with the input member 2. The input gear 21 may be formed integrally with the input member 2, which is a shaft member, from the same member, or may be formed from a member separate from the input member 2 and integrated with the input member 2 by welding or the like. Similarly, a first counter gear 31 and a second counter gear 32, which will be described later, may be formed from the same member as the shaft member (counter shaft 30) or from a separate member, and the differential input gear 41 may be formed from the same member as the differential case 42 or from a separate member.
[0015] The counter gear mechanism 3 includes a first counter gear 31 and a second counter gear 32. The first counter gear 31 and the second counter gear 32 are both connected to the counter shaft 30 so as to rotate integrally. The first counter gear 31 meshes with the input gear 21, and the second counter gear 32 meshes with a differential input gear 41. The differential input gear 41 is connected to the differential case 42 so as to rotate integrally therewith.
[0016] As shown in FIG. 2, the rotating electric machine 1 (rotor 11) and the input member 2 are disposed on a first axis A1. The counter gear mechanism 3 is disposed on a second axis A2 that is a separate axis parallel to the first axis A1. The differential gear mechanism 4 including the output member is disposed on a third axis A3 that is a separate axis parallel to the first axis A1 and the second axis A2. In this embodiment, as shown in FIG. 1, the first axis A1 is disposed on a side V1 above the second axis A2 and the third axis A3. Note that, although the present embodiment illustrates a configuration in which the second axis A2 is disposed on the side V1 above the third axis A3, the second axis A2 and the third axis A3 may be disposed at the same position in the vertical direction V, or the third axis A3 may be disposed on the side V1 above the second axis A2.
[0017] In the following description, the direction parallel to the first axis A1, the second axis A2, and the third axis A3 is referred to as the "axial direction L" of the vehicle drive device 10. One side of the axial direction L is referred to as the "axial first side L1," and the other side of the axial direction L is referred to as the "axial second side L2." The direction in which the rotating members revolve around their respective rotation axes is referred to as the "circumferential direction C" (see FIG. 1). The directions perpendicular to the first axis A1, the second axis A2, and the third axis A3 are referred to as the "radial direction R" based on each axis (see FIG. 1). The side of the radial direction R closer to the axis is referred to as the "radial inner side R1," and the side farther from the axis is referred to as the "radial outer side R2." Note that when it is not necessary to distinguish which axis is used as the reference or when it is clear which axis is used as the reference, the term "radial direction R" may be used simply.
[0018] Furthermore, in a state in which the vehicle drive device 10 is mounted on a vehicle, the direction along the vertical direction is referred to as the up-down direction V, and the upper side along the up-down direction V is referred to as the upper side V1, and the lower side along the up-down direction V is referred to as the lower side V2. In this embodiment, in a state in which the vehicle is mounted, the axial direction L is along the horizontal direction, and the axial direction L and the up-down direction V are orthogonal. In this state, the direction orthogonal to the axial direction L and the up-down direction V is referred to as the fore-aft direction X, and one side of the fore-aft direction X is referred to as the "first fore-aft side X1," and the other side of the fore-aft direction X is referred to as the "second fore-aft side X2."
[0019] In this embodiment, the rotating electric machine 1 is exemplified as an electrically excited synchronous motor (EESM) having a stator 15 on which multiple-phase (N-phase, e.g., three-phase, where N is an arbitrary natural number) stator coils 17 are arranged, and a wound-field rotor 11. A wound-field synchronous rotating electric machine has a rotor structure equipped with an electromagnet using a field winding (rotor coil 13) instead of a permanent magnet as a field source. The field magnetic flux generated by the electromagnet can be adjusted by a field current supplied to the rotor winding 13 from an excitation circuit (both of which are included in an electric circuit unit EU, described later) controlled by a control device via a contactless power supply 18 and a rectifier circuit 19 (see FIG. 2). The excitation circuit is configured with, for example, a DC-DC converter and adjusts a DC voltage supplied from a DC power source (not shown) so that a set field current flows through the rotor winding 13. The power generated by the excitation circuit is transmitted as AC via the non-contact power supply unit 18 , converted to DC by the rectifier circuit 19 , and supplied to the rotor coil 13 .
[0020] Wound-field synchronous rotating electric machines have the following advantages over permanent magnet synchronous motors (PMSMs): (1) the variable field magnetic flux is expected to improve efficiency in the medium-to-high speed / low torque operating range, and the constant output range can be expanded, and (2) they are not affected by supply instability of permanent magnets that use rare earths, etc. For these reasons, in recent years they have been increasingly used as a driving force source for the wheels of electric and hybrid vehicles.
[0021] As shown in FIG. 2 and FIGS. 4 and 5, which will be referred to below, the rotating electric machine 1 of this embodiment is an inner rotor type rotating electric machine in which the rotor 11 is disposed radially inward R1 relative to the stator 15. Furthermore, the end of the stator coil 17 in the axial direction L is referred to as the stator coil end portion 17e, and the end of the rotor coil 13 in the axial direction L is referred to as the rotor coil end portion 13e. In this embodiment, the stator 15 is formed by winding the stator coil 17 around the stator core 16, and the portion protruding in the axial direction L from the stator core 16 corresponds to the stator coil end portion 17e. Similarly, in this embodiment, the rotor 11 is formed by winding the rotor coil 13 around the rotor core 12, and the portion protruding in the axial direction L from the rotor core 12 corresponds to the rotor coil end portion 13e. In this embodiment, as shown in Figure 2, an example is shown in which the rotating electric machine 1 has a stator coil end portion 17e and a rotor coil end portion 13e on both sides in the axial direction L, but it may also be a form in which the stator coil end portion 17e and the rotor coil end portion 13e are provided on only one side in the axial direction L.
[0022] 1 and 2, the input member 2, input gear 21, counter gear mechanism 3, and differential gear mechanism 4 are arranged on the first axial side L1 with respect to the rotary electric machine 1. As described above, the input member 2, which rotates integrally with the input gear 21, is connected to the rotor shaft 20 so as to rotate integrally with the rotor shaft 20. The input member 2 is rotatably supported on the case 9 via input bearings B2. The input bearings B2 are arranged on both sides of the input gear 21 in the axial direction L. When distinguishing between the input bearings B2, the bearing arranged on the first axial side L1 with respect to the input gear 21 will be referred to as the first input bearing B21, and the bearing arranged on the second axial side L2 with respect to the input gear 21 will be referred to as the second input bearing B22.
[0023] The counter gear mechanism 3 is rotatably supported relative to the case 9 via a counter bearing B3. Specifically, a counter shaft 30, to which a first counter gear 31 and a second counter gear 32 are connected, is rotatably supported relative to the case 9 by counter bearings B3 arranged at two locations in the axial direction L. The first counter gear 31 is arranged on a first axial side L1 relative to the second counter gear 32. The counter shaft 30 is rotatably supported relative to the case 9 by a first counter bearing B31 arranged on the first axial side L1 relative to the first counter gear 31 and a second counter bearing B32 arranged on the second axial side L2 relative to the second counter gear 32.
[0024] The differential gear mechanism 4 is rotatably supported relative to the case 9 via a differential bearing B4. Specifically, the differential case 42 is rotatably supported relative to the case 9 by a first differential bearing B41 disposed on a first axial side L1 relative to the differential case 42 and a second differential bearing B42 disposed on a second axial side L2 relative to the differential case 42. In this embodiment, the differential input gear 41 that meshes with the second counter gear 32 has a larger diameter than the second counter gear 32. As a result, the rotational speed is further reduced compared to the counter shaft 30, and power is transmitted to the differential case 42 that rotates integrally with the differential input gear 41.
[0025] In this embodiment, a bevel gear type differential gear mechanism 4 is illustrated. The differential gear mechanism 4 includes a plurality of differential pinion gears 44 housed in a differential case 42, and a pair of differential side gears 45. The differential pinion gears 44 are rotatably supported by differential pinion shafts 43 that are fixed to the differential case 42 and rotate integrally with the differential case 42. A plurality of differential pinion shafts 43 are provided radially (for example, in a cross shape) along a radial direction R based on the third axis A3, and the plurality of differential pinion gears 44 are also arranged at intervals in the radial direction R. The pair of differential side gears 45 mesh with the plurality of differential pinion gears. The differential side gears 45 are arranged to rotate about the third axis A3 as a rotation axis. Of the pair of differential side gears 45, the first differential side gear 45 is arranged on a first axial side L1 relative to the differential pinion shaft 43, and the second differential side gear 45 is arranged on a second axial side L2 relative to the differential pinion shaft 43.
[0026] In this embodiment, the first differential side gear 45 arranged on the first axial side L1 is connected to a first drive shaft DS, and the first drive shaft DS is connected to a first wheel W. The second differential side gear 45 arranged on the second axial side L2 is connected to a connecting shaft JS, which is connected to a second drive shaft DS, and the second drive shaft DS is connected to a second wheel W. Since the pair of drive shafts DS and connecting shaft JS rotate integrally with the respective differential side gears 45, the pair of drive shafts DS and connecting shaft JS can also be considered a pair of output members.
[0027] Although a bevel gear type differential gear mechanism 4 has been exemplified here, the differential gear mechanism 4 may also be a planetary gear mechanism. For example, if the differential gear mechanism 4 is a double pinion type planetary gear mechanism, a member that rotates integrally with the carrier and a member that rotates integrally with the sun gear correspond to the output member.
[0028] The case 9 includes a first storage chamber E1 that houses the power transmission mechanism TA, such as the rotating electric machine 1, input member 2, input gear 21, counter gear mechanism 3, and differential gear mechanism 4, and a second storage chamber E2 that is partitioned from the first storage chamber E1 and houses an electric circuit unit EU that includes a control device that drives and controls the rotating electric machine 1, an inverter, an excitation circuit, a smoothing capacitor, etc.
[0029] The case 9 includes a case main body 90, which is the core of the first storage chamber E1 and the second storage chamber E2, a first cover 91, a second cover 92, and a third cover (not shown). The case main body 90 includes a cylindrical portion having openings on both sides in the axial direction L, and a box-shaped portion having a side wall portion forming a rectangular opening extending from the peripheral wall of the cylindrical portion to one side in the front-rear direction X (here, the second front-rear direction side X2). The first cover 91 is a lid member that closes the opening on the first axial side L1 of the cylindrical portion of the case main body 90 from the first axial side L1 (see FIG. 1). The second cover 92 is a lid member that closes the opening on the second axial side L2 of the cylindrical portion of the case main body 90 from the second axial side L2 (see FIG. 3). The third cover is a lid member that closes the opening on the second axial side X2 of the box-shaped portion of the case main body 90. A first storage chamber E1 is formed in a space surrounded by the inner wall of the cylindrical portion of the case body 90, the first cover 91, and the second cover 92. A second storage chamber E2 is formed in a space surrounded by the outer wall of the cylindrical portion of the case body 90, the side wall of the box-shaped portion, and the third cover.
[0030] Since the electric circuit unit EU is accommodated in the second accommodation chamber E2 of the case 9, the case 9 is also provided with a first connector CN1 to which power wiring from a high-voltage DC power supply (not shown) with a rated voltage of 200 volts or more is connected (see FIG. 3). The case 9 is also provided with a second connector CN2 to which power wiring of about 12 volts that supplies drive power to the control devices in the electric circuit unit EU and signal wiring that is connected to control devices higher than the electric circuit unit EU, such as a vehicle control device (not shown) that controls the entire vehicle and various sensors, etc. As will be described in detail later, a coolant supply port Wi, which serves as an inlet for coolant for cooling the inverter and smoothing capacitor of the electric circuit unit EU and the powertrain mechanism TA, and a coolant discharge port Wo, which serves as an outlet for the coolant, are also provided on the case 9 or on a member attached to the case 9 (e.g., an oil cooler).
[0031] The case 9 is provided with oil passages for circulating oil so that lubricating oil can be appropriately supplied to the input bearing B2, counter bearing B3, and differential bearing B4. For example, an oil passage for supplying oil to the input bearing B2, an oil passage for supplying oil to the counter bearing B3, and an oil passage for supplying oil to the differential bearing B4 are formed inside a protrusion 99 formed on the first cover 91 shown in FIG.
[0032] The oil also cools the rotor coil 13 and the stator coil 17, which become overheated due to the flow of current. Specifically, the rotor coil 13 and the stator coil 17 are cooled by pouring oil onto the rotor coil end portions 13e protruding from the end of the rotor 11 in the axial direction L and the stator coil end portions 17e protruding from the end of the stator 15 in the axial direction L.
[0033] The oil that has been used to lubricate the bearings, cool the coils, etc. is released into the case 9 and is stored in an oil reservoir P (see FIG. 3) provided at the bottom of the case 9. The oil stored in the oil reservoir P is sucked in and discharged by an oil pump (not shown) and supplied to the first oil supply section 81, the second oil supply section 82, and other oil passages. In this embodiment, the oil discharged from the oil pump is cooled by heat exchange with cooling water in the oil cooler OC.
[0034] The cooling structure for the stator coil 17 and the rotor coil 13, and the lubrication structure for the power transmission mechanism TA related to the cooling structure will be described below with reference to Figures 4 to 7. First, the cooling structure for the stator coil 17 and the rotor coil 13 will be described with reference to Figures 4 and 5. Figure 4 is a schematic cross-sectional view of the vicinity of the rotor coil end portion 13e and the stator coil end portion 17e on the first axial side L1, and Figure 5 is a schematic perspective view of the vicinity of the rotor coil end portion 13e and the stator coil end portion 17e on the first axial side L1.
[0035] 4 and 5 , the case 9 is provided with a first oil supply unit 81 that supplies oil to the stator coil end portion 17e from the radial outside R2 of the stator coil end portion 17e, and a second oil supply unit 82 that supplies oil to the rotor coil end portion 13e from the outside in the axial direction L of the rotor coil end portion 13e (in this case, the first axial side L1). When coil end portions are provided on both sides in the axial direction L as in this embodiment, the rotor coil end portion 13e on the second axial side L2 is also provided with the second oil supply unit 82 so as to supply oil to the rotor coil end portion 13e from the second axial side L2, which is outside the rotor coil end portion 13e in the axial direction L. In this way, in this embodiment, cooling oil can be individually supplied to the rotor coil end portion 13e and the stator coil end portion 17e of the wound-field rotating electric machine 1 via the first oil supply unit 81 and the second oil supply unit 82.
[0036] Oil is injected into the rotor coil end portions 13e from a second oil supply portion 82 arranged on the outside in the axial direction L of the rotor coil end portions 13e. Note that, as shown in Figures 4 and 5, this embodiment illustrates an example in which the second oil supply portion 82 is provided so as to have an opening on the diagonally upper side V1 of the rotor coil end portions 13e, but the second oil supply portion 82 may also open at a position adjacent to the rotor coil end portions 13e in the axial direction L. Furthermore, this does not preclude a configuration in which a tubular second oil supply portion 82 that is thinner than shown is provided and extends in the axial direction L, and oil drips from an opening of the second oil supply portion 82 arranged on the radially outside R2 of the rotor coil end portions 13e.
[0037] Oil is dripped or sprayed onto the stator coil end portion 17e from a first oil supply portion 81 arranged on the radially outer side R2 of the stator coil end portion 17e. 4 and 5 show an example in which the opening of the first oil supply portion 81 is located on the radially outer side R2 of the stator coil end portion 17e. However, like the second oil supply portion 82, the first oil supply portion 81 may be configured to have an opening provided on the axially outer side L of the stator coil end portion 17e and spray oil from that opening.
[0038] Because the rotor 11 is a rotating member, oil supplied to the rotor coil end portion 13e and heated by heat exchange with the rotor coil 13 is scattered radially outward (R2) by centrifugal force. Because the stator coil end portion 17e is located radially outward (R2) of the rotor coil end portion 13e, heated oil is scattered from the rotor coil end portion 13e to the stator coil end portion 17e. As a result, even if oil is supplied from the first oil supply portion 81, the cooling effect of the stator coil end portion 17e may be reduced. Similarly, heated oil may fall from the stator coil end portion 17e located above the rotor coil end portion 13e on the upper side (V1) of the rotor coil end portion 13e to the rotor coil end portion 13e due to gravity, potentially reducing the cooling effect of the rotor coil end portion 13e.
[0039] 4 and 5 , in this embodiment, a restricting member 8 is disposed between the stator coil end portion 17e and the rotor coil end portion 13e in the radial direction R, to restrict the flow of oil in the radial direction R between the stator coil end portion 17e and the rotor coil end portion 13e. The first oil supply portion 81 that supplies oil to the stator coil end portion 17e from the radial outside R2 of the stator coil end portion 17e can also be said to be an oil supply portion that supplies oil to the stator coil end portion 17e from the radial outside R2 of the restricting member 8. Note that even if the first oil supply portion 81 is provided with an opening on the outside of the stator coil end portion 17e in the axial direction L and is configured to inject oil from the opening, there is no problem as long as the opening is located on the radial outside R2 of the restricting member 8.
[0040] The provision of such restricting member 8 makes it possible to restrict oil that has cooled the rotor coil end portion 13e and become hot from flowing toward the stator coil end portion 17e, and restricts oil that has cooled the stator coil end portion 17e and become hot from flowing toward the rotor coil end portion 13e. Therefore, in this embodiment, the rotor coil end portion 13e and the stator coil end portion 17e can be cooled effectively separately, making it easy to improve the cooling performance of the rotor coil 13 and the stator coil 17.
[0041] As described above, the temperature of the oil increases after heat exchange with the coil end portions. Therefore, it is preferable that the restricting member 8 be made of a material with high heat resistance and low thermal conductivity. The restricting member 8 may be made of, for example, a heat insulating material such as carbon fiber reinforced plastics (CFRP), fiber reinforced plastics (FRP), other synthetic materials, or ceramics. In this embodiment, the restricting member 8 is formed in a cylindrical shape so as to cover the rotor coil end portions 13e from the circumferential direction C. A resin material is easy to use to form such a cylindrical restricting member 8. As shown in FIGS. 4 and 5 , the end of the restricting member 8 opposite the side from which the rotor coil end portions 13e protrude in the axial direction L abuts against the rotor core 12, and the end on the side from which the rotor coil end portions 13e protrude protrudes beyond the end of the rotor coil end portions 13e, thereby covering the rotor coil end portions 13e from the radially outer side R2 to the entire circumferential direction C.
[0042] The rotor coil 13 is wound around a rotor coil holding member 14 (so-called bobbin) that holds the rotor coil 13. In this embodiment, the rotor coil holding member 14, around which the rotor coil 13 is wound, is fixed to the rotor core 12 to form the rotor 11. The restricting member 8 is formed in a cylindrical shape extending in the axial direction L and the circumferential direction C. As described above, the end of the restricting member 8 on the opposite side in the axial direction L from the side from which the rotor coil end portion 13e protrudes abuts against the rotor core 12. In this embodiment, the restricting member 8 is also fixed to the rotor core 12, and the restricting member 8 also rotates integrally with the rotor 11. Of course, the restricting member 8 may be fixed to the stator 15. For example, the restricting member 8 may be fixed to the stator core 16. As shown in FIGS. 4 and 5 , in this embodiment, the restricting member 8, formed in a cylindrical shape extending in the axial direction L and the circumferential direction C, is attached so as to cover the entire outer circumferential surface 14a of the rotor coil holding member 14. In other words, the restricting member 8 is disposed so as to overlap the entire stator coil end portion 17e and the entire rotor coil end portion 13e when viewed in the radial direction R.
[0043] As shown in FIG. 1 , the rotating electric machine 1 is disposed on an upper side V1 of the power transmission mechanism TA constituting the vehicle drive device 10. Therefore, the oil that has cooled the stator coil end portions 17e and the rotor coil end portions 13e moves due to gravity to a lower side V2 within the case 9 and reaches the oil reservoir P. The oil path includes rotating members that constitute the counter gear mechanism 3, the differential gear mechanism 4, and the like, as well as bearings that support the rotating members. Therefore, it is preferable to use the oil that has cooled the stator coil end portions 17e and the rotor coil end portions 13e to lubricate these rotating members and bearings. In this embodiment, a drain path is provided to discharge the oil so that the oil that has cooled the stator coil end portions 17e and the rotor coil end portions 13e can be appropriately guided to the oil reservoir P and other locations to be lubricated.
[0044] Fig. 6 is an explanatory diagram of the vehicle drive device 10 viewed from the first side X1 in the front-rear direction, and schematically shows the positions of the first oil discharge passage 88 and the second oil discharge passage 89. Fig. 7 is an explanatory diagram of the vehicle drive device 10 viewed from the second axial side L2, and schematically shows the positions of the first oil discharge passage 88 and the second oil discharge passage 89.
[0045] The case 9 has an inner wall surface 9a that radially surrounds the stator 15, which is disposed on the radially outer side R2 of the inner rotor type rotating electric machine 1. This inner wall surface 9a also surrounds the stator coil end portion 17e from the radially outer side R2. As shown in FIG. 7 , the inner wall surface 9a has an upper facing region 9u that is located relatively on the upper side V1 and faces the stator coil end portion 17e from the upper side V1, and a lower facing region 9d that is located relatively on the upper side V1 and faces the stator coil end portion 17e from the lower side V2. The inner wall surface 9a also has openings through which oil flows into the first oil discharge passage 88 and the second oil discharge passage 89. The openings of the first oil discharge passage 88 and the second oil discharge passage 89 are both located in the lower facing region 9d. In consideration of oil discharge, the opening is preferably located at the lowest side V2 of the lower opposing region 9d, but it does not have to be at the lowest position as long as it is within the range of the lower opposing region 9d. The inner wall surface 9a may cover the entire area of the stator core 16 and the stator coil end portion 17e in the circumferential direction C, or may cover only a part of it. stomach.
[0046] An oil storage space E18 capable of storing oil is formed in the lower part of the case 9. A part of the oil storage space E18 may be configured as the oil storage portion P, or the oil storage portion P may be provided so as to communicate with the oil storage space E18. The first oil discharge passage 88 connects the lower opposing region 9d with the oil storage space E18 formed in the lower part of the case 9. As described above, the oil storage space E18 also serves as the oil storage portion P or is connected to the oil storage portion P. Therefore, it can be said that the first oil discharge passage 88 connects the lower opposing region 9d with the oil storage portion P. As shown in FIG. 6 , for example, oil that has cooled the stator coil end portion 17e and the rotor coil end portion 13e lubricates the counter bearing B3 and is then discharged to the oil storage portion P through the first oil discharge passage 88.
[0047] The second oil discharge passage 89 is provided to connect the lower opposing region 9d with the differential gear mechanism 4. As shown in Figures 6 and 7, the oil that has cooled the stator coil end portion 17e and the rotor coil end portion 13e passes through the second oil discharge passage 89 and is supplied to the differential bearing B4 and the meshing portions of the gears housed inside the differential case 42.
[0048] The oil supplied to the stator coil end portion 17e and the rotor coil end portion 13e is distributed to the first oil discharge passage 88 and the second oil discharge passage 89. If an excessive amount of oil is supplied to the differential gear mechanism 4, there is a risk that the drag resistance caused by the gears will increase. However, in this embodiment, by distributing the oil after cooling the coils of the rotating electric machine 1 to two oil discharge passages, an appropriate amount of oil can be supplied to the differential gear mechanism 4, thereby enabling the differential gear mechanism 4 to be properly lubricated.
[0049] The above description has been given using as an example a three-shaft vehicle drive system 10 in which the rotating electric machine 1 is disposed on the first shaft A1, the counter gear mechanism 3 functioning as a reduction mechanism is disposed on the second shaft A2, and the differential gear mechanism 4 is disposed on the third shaft A3. However, the configuration in which the restricting member 8 is disposed between the stator coil end portion 17e and the rotor coil end portion 13e in the radial direction R in the EESM is not limited to the three-shaft vehicle drive system 10, but can also be applied to a one-shaft vehicle drive system including the rotating electric machine 1, a reduction mechanism using a planetary gear mechanism, and a differential gear mechanism using a planetary gear mechanism or a bevel gear mechanism. Naturally, the configuration can also be applied to a vehicle drive system having only the rotating electric machine 1 (i.e., the rotating electric machine 1). Naturally, the configuration can also be applied to a two-shaft vehicle drive system and an EESM in a vehicle drive system with four or more shafts. Similarly, the first oil discharge passage 88 and the second oil discharge passage 89 can be provided regardless of the number of shafts constituting the vehicle drive system.
[0050] As described above, in the rotating electric machine 1 and vehicle drive device 10 of this embodiment, it is possible to appropriately cool the coils of both the rotor 11 and the stator 15 of the wound-field rotating electric machine 1. In other words, it is also possible to appropriately recover heat from the rotor coil 13 and the stator coil 17. Furthermore, the oil that has cooled the rotor coil 13 and the stator coil 17 is also supplied to the bearings and the meshing portions of the gears, so that heat can also be recovered from the power transmission mechanism TA.
[0051] Unlike conventional vehicles that use an internal combustion engine as the primary driving force for the wheels W, this type of heat recovery is extremely useful in electric vehicles, which cannot utilize the exhaust heat of the internal combustion engine for heating. In conventional vehicles powered by an internal combustion engine, the cooling water, whose temperature has been increased by heat exchange with the internal combustion engine, is used as a heating source. However, in vehicles without an internal combustion engine, such as electric vehicles, or in vehicles with an internal combustion engine that are sometimes stopped, such as hybrid vehicles, the number of heat sources that can utilize the exhaust heat for heating is fewer than in conventional vehicles. For this reason, electric vehicles and hybrid vehicles are increasingly being equipped with electric heaters for heating, or are using heat pump systems for heating as well as cooling. Naturally, using an electric heater increases electricity consumption. Furthermore, even in the case of a heat pump system, when the outside temperature is low, the amount of heat pumped from the outside air decreases, which can increase the load on the air conditioner compressor and other components, resulting in increased electricity consumption.
[0052] As described above, in the rotating electric machine 1 and the vehicle drive device 10 of this embodiment, the rotor coil 13 and the stator coil 17 are cooled separately. Therefore, the heat recovered from the rotor coil 13 and the heat recovered from the stator coil 17 can be transferred to the coolant in the oil cooler OC, which is a heat exchanger with the coolant, via the oil reservoir P without dissipating. The coolant corresponds to the heat medium in the heat exchanger (oil cooler OC).
[0053] In this embodiment, as shown in FIG. 3, the oil cooler OC is attached to the outside of the case 9. Coolant is supplied from a coolant supply port Wi shown in FIG. 3 and cools the electric circuit unit EU (inverter, DC-DC converter, smoothing capacitor, etc.) and the rotating electric machine 1 (e.g., stator 15) before being supplied to the oil cooler OC. The coolant recovers heat from the oil in the oil cooler OC. That is, oil and coolant are supplied from the inside of the case 9 to the oil cooler OC, and the oil that has exchanged heat with the coolant is supplied back into the case 9. The coolant is discharged to the outside of the vehicle drive device 10 from a coolant discharge port Wo of the oil cooler OC. The discharged coolant can exchange heat with the refrigerant of the air conditioner in an air conditioner heat exchanger (chiller or water-cooled condenser, not shown). The coolant can also exchange heat with the coolant of the battery cooler in the battery cooler of the DC power supply. Since the performance of a DC power supply decreases in a low-temperature environment, it is preferable to be able to heat the DC power supply to an appropriate temperature when the temperature of the DC power supply is low, such as when starting a vehicle.
[0054] In this way, the rotating electric machine 1 and vehicle drive device 10 of this embodiment can appropriately cool both the rotor 11 and the stator 15 of the wound field type rotating electric machine 1, and when a heat source is required, can not only discard the recovered heat but also effectively utilize the exhaust heat.
[0055] The rotating electric machine (1) and the vehicle drive device (10) described above will be briefly summarized below.
[0056] In one aspect, the rotating electric machine (1) includes a stator (15) having a stator coil (17), a rotor (11) having a rotor coil (13), and a case (9) that houses the stator (15) and the rotor (11), wherein a direction along a rotation axis (first axis A1) of the rotor (11) is defined as an axial direction (L), a direction perpendicular to the axial direction (L) is defined as a radial direction (R), and the rotor (11) is disposed on the inside (R1) of the radial direction (R) with respect to the stator (15), an end of the stator coil (17) in the axial direction (L) is defined as a stator coil end portion (17e), and the axial direction (R) of the rotor coil (13) is defined as a stator coil end portion (17e). The rotor coil end portion (13e) has an end in the axial direction (L) as a rotor coil end portion (13e), and a regulating member (8) that regulates the flow of oil in the radial direction (R) between the stator coil end portion (17e) and the rotor coil end portion (13e) is arranged between the stator coil end portion (17e) and the rotor coil end portion (13e) in the radial direction (R).The regulating member (8) is provided with a first oil supply portion (81) that supplies oil to the stator coil end portion (17e) from the outside (R2) in the radial direction (R) with respect to the regulating member (8), and a second oil supply portion (82) that supplies oil to the rotor coil end portion (13e) from the outside in the axial direction (L) with respect to the rotor coil end portion (13e).
[0057] According to this configuration, cooling oil can be supplied individually to the coil end portions (13e, 17e) of the rotor (11) and the stator (15) of the wound-field rotating electric machine (1). Furthermore, according to this configuration, the restricting member (8) is disposed between the stator coil end portion (17e) and the rotor coil end portion (13e) in the radial direction (R). This restricting member (8) can restrict oil that has cooled the stator coil end portion (17e) and become hot from flowing toward the rotor coil end portion (13e) and restrict oil that has cooled the rotor coil end portion (13e) and become hot from flowing toward the stator coil end portion (17e). Therefore, according to this configuration, the stator coil end portion (17e) and the rotor coil end portion (13e) can be effectively cooled individually, which facilitates improving the cooling performance of the stator coil (17) and the rotor coil (13). That is, this configuration provides a technique for appropriately cooling the rotor (11) and the stator (15), and the coils (13, 17) of both the rotor (11) and the stator (15) of the wound-field type rotating electric machine (1).
[0058] Here, it is preferable that the restricting member (8) is made of a heat insulating material.
[0059] If the restricting member (8) has high thermal conductivity, the oil supplied to the stator coil end portion (17e) and the oil supplied to the rotor coil end portion (13e) can easily exchange heat through the restricting member (8). If the restricting member (8) is made of a heat insulating material, the heat transfer between the stator coil end portion (17e) and the rotor coil end portion (13e) can be further reduced. Therefore, the cooling performance of the stator coil end portion (17e) and the rotor coil end portion (13e) can be easily improved.
[0060] Furthermore, it is preferable that the rotor (11) of the rotating electric machine (1) further includes a rotor coil holding member (14) that holds the rotor coil (13), and that the regulating member (8) is formed in a cylindrical shape extending in the axial direction (L) and the circumferential direction (C), with the direction circumferentially circumferential around the rotation axis (first axis A1) of the rotor (11) being the circumferential direction (C), and is attached so as to cover the outer peripheral surface (14a) of the rotor coil holding member (14).
[0061] The cylindrical configuration of the restricting member (8) facilitates restricting the flow of oil between the stator coil end portion (17e) and the rotor coil end portion (13e) and effectively limits heat transfer between the stator coil end portion (17e) and the rotor coil end portion (13e), thereby facilitating improved cooling performance of the stator coil end portion (17e) and the rotor coil end portion (13e).
[0062] In one embodiment, the vehicle drive device (10) includes the above-described rotating electric machine (1), a pair of output members (differential side gears 45, drive shafts DS) each of which is drivingly connected to a wheel (W), and a power transmission mechanism (TA) housed in the case (9) and transmitting power between the rotor (11) and the pair of output members (differential side gears 45, drive shafts DS), wherein the power transmission mechanism (TA) includes a differential gear mechanism (4) which distributes the driving force transmitted from the rotating electric machine (1) to the pair of output members (differential side gears 45, drive shafts DS), and the case The case (9) preferably has an inner wall surface (9a) surrounding the stator coil end portion (17e) from the outside (R2) in the radial direction (R), and also has a first oil discharge passage (88) and a second oil discharge passage (89), the first oil discharge passage (88) being arranged to communicate between a lower opposing region (9d) which is an area of the inner wall surface (9a) facing the stator coil end portion (17e) from the lower side (V2) and an oil reservoir portion (P, E18) formed in the lower part of the case (9), and the second oil discharge passage (89) being arranged to communicate between the lower opposing region (9d) and the differential gear mechanism (4).
[0063] According to this configuration, by providing two oil discharge passages, the first oil discharge passage and the second oil discharge passage, oil supplied to the stator coil end portion and the rotor coil end portion via the first supply portion and the second supply portion can be appropriately discharged from the space surrounded by the inner wall surface of the case. Furthermore, according to this configuration, oil discharged from the space surrounded by the inner wall surface of the case can be distributed to the differential gear mechanism and the oil reservoir. Therefore, the oil after cooling the stator coil end portion or the rotor coil end portion can be used to supply an appropriate amount of oil to the differential gear mechanism, thereby appropriately lubricating the differential gear mechanism. If too much oil is supplied to the differential gear mechanism, the drag resistance of the gears increases. However, according to this configuration, it is easy to set the appropriate amount of oil for lubricating the differential gear mechanism. [Explanation of symbols]
[0064] 1: rotating electric machine, 4: differential gear mechanism, 8: restricting member, 9: case, 9a: inner wall surface, 9d: lower opposing area, 10: vehicle drive device, 11: rotor, 13: rotor coil, 13e: rotor coil end portion, 14: rotor coil holding member, 14a: outer peripheral surface, 15: stator, 17: stator coil, 17e: stator coil end portion, 45: differential side gear (output member), 81: First oil supply section, 82: second oil supply section, 88: first oil discharge passage, 89: second oil discharge passage, A1: first shaft (rotor rotation axis), C: circumferential direction, DS: drive shaft (output member), E18: oil storage space (oil storage section), JS: connecting shaft (output member), L: axial direction, P: oil storage section, R: radial direction, R2: radial outer side (radial outer side), TA: power transmission mechanism, V2: lower side, W: wheel
Claims
1. a stator having a stator coil; a rotor having a rotor coil; a case that houses the stator and the rotor, A direction along the rotation axis of the rotor is defined as an axial direction, and a direction perpendicular to the axial direction is defined as a radial direction, a rotating electric machine in which the rotor is disposed radially inside the stator, an end portion of the stator coil in the axial direction is defined as a stator coil end portion; The axial end of the rotor coil is defined as a rotor coil end portion, a restricting member is disposed between the stator coil end portion and the rotor coil end portion in the radial direction, the restricting member restricting oil flow in the radial direction between the stator coil end portion and the rotor coil end portion, a first oil supply portion that supplies oil to the stator coil end portion from the radially outer side of the restricting member; a second oil supply unit that supplies oil to the rotor coil end portion from the outside in the axial direction.
2. The rotating electric machine according to claim 1 , wherein the restricting member is made of a heat insulating material.
3. the rotor further includes a rotor coil holding member that holds the rotor coil; The direction around the rotation axis of the rotor is defined as a circumferential direction, 2. The rotating electric machine according to claim 1, wherein the restricting member is formed in a cylindrical shape extending in the axial direction and the circumferential direction, and is attached so as to cover an outer peripheral surface of the rotor coil holding member.
4. A rotating electric machine according to any one of claims 1 to 3; a pair of output members each drivingly connected to a wheel; a power transmission mechanism housed in the case and performing power transmission between the rotor and the pair of output members, the power transmission mechanism includes a differential gear mechanism that distributes the driving force transmitted from the rotating electric machine to the pair of output members, the case has an inner wall surface that surrounds the stator coil end portion from the outside in the radial direction, and also has a first oil discharge passage and a second oil discharge passage, the first oil discharge passage is provided to communicate a lower opposing region, which is a region of the inner wall surface that faces the stator coil end portion from below, with an oil reservoir formed in a lower portion of the case, The second oil discharge passage is provided to connect the lower opposing area with the differential gear mechanism.
Citation Information
Patent Citations
Rotary electric machine
WO2023074705A1