WO2019208065A1 - モータユニット - Google Patents

モータユニット Download PDF

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Publication number
WO2019208065A1
WO2019208065A1 PCT/JP2019/012648 JP2019012648W WO2019208065A1 WO 2019208065 A1 WO2019208065 A1 WO 2019208065A1 JP 2019012648 W JP2019012648 W JP 2019012648W WO 2019208065 A1 WO2019208065 A1 WO 2019208065A1
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WO
WIPO (PCT)
Prior art keywords
oil
motor
reservoir
discharge hole
housing
Prior art date
Application number
PCT/JP2019/012648
Other languages
English (en)
French (fr)
Japanese (ja)
Inventor
勇樹 石川
慶介 福永
Original Assignee
日本電産株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 日本電産株式会社 filed Critical 日本電産株式会社
Priority to CN201990000653.6U priority Critical patent/CN213817493U/zh
Publication of WO2019208065A1 publication Critical patent/WO2019208065A1/ja

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/19Arrangements for cooling or ventilating for machines with closed casing and closed-circuit cooling using a liquid cooling medium, e.g. oil
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/64Electric machine technologies in electromobility

Definitions

  • the present invention relates to a motor unit.
  • This application is based on Japanese Patent Application No. 2018-084464 filed on Apr. 25, 2018. This application claims the benefit of priority to that application. The entire contents of which are hereby incorporated by reference.
  • Patent Document 1 discloses a structure for cooling a motor by supplying a refrigerant to the motor from a refrigerant inlet located on the upper side of the motor.
  • One aspect of the present invention is to provide a motor unit capable of cooling the motor by efficiently discharging oil from the upper side of the motor.
  • One aspect of the motor unit of the present invention includes a motor having a rotor that rotates about a motor shaft that extends in the horizontal direction, a stator that is positioned radially outward of the rotor, a housing that houses the motor, And oil contained in the container.
  • the housing is provided with an oil passage for circulating the oil and supplying the oil to the motor from above the motor.
  • the oil passage is provided with a bowl-shaped reservoir that is located above the motor and stores the oil.
  • the reservoir has a bottom that extends along a horizontal plane. The bottom is provided with a recess recessed downward on the top surface, and a discharge hole that penetrates the bottom and opens to the top surface of the recess and supplies the oil in the reservoir to the motor.
  • a motor unit that can cool oil by efficiently discharging oil from the upper side of the motor.
  • FIG. 1 is a conceptual diagram of a motor unit according to an embodiment.
  • FIG. 2 is a cross-sectional view of the motor unit, and is a view of the motor and the second reservoir as seen from above.
  • FIG. 3 is a perspective view of the second reservoir.
  • FIG. 4 is a schematic cross-sectional view of the side wall bottom portion.
  • FIG. 5 is a cross-sectional view of the motor unit viewed along a plane orthogonal to the axial direction.
  • FIG. 6 is a cross-sectional view of a modified example of the recess and the first discharge hole.
  • an XYZ coordinate system is appropriately shown as a three-dimensional orthogonal coordinate system.
  • the Z-axis direction indicates the vertical direction (that is, the vertical direction)
  • the + Z direction is the upper side (opposite to the gravity direction)
  • the ⁇ Z direction is the lower side (gravity direction).
  • the X-axis direction is a direction orthogonal to the Z-axis direction and indicates the front-rear direction of the vehicle on which the motor unit 1 is mounted.
  • the Y-axis direction is a direction orthogonal to both the X-axis direction and the Z-axis direction, and indicates the width direction (left-right direction) of the vehicle.
  • the direction parallel to the motor shaft J2 of the motor 2 (Z-axis direction) is simply referred to as “axial direction”, and the radial direction around the motor shaft J2 is simply referred to as “radial direction”.
  • the circumferential direction around the motor shaft J2, that is, the circumference of the motor shaft J2 is simply referred to as “circumferential direction”.
  • extending along in a predetermined direction is inclined in a range of less than 45 ° with respect to the strict direction, in addition to extending in a strict direction. Including cases extending in the direction.
  • the motor unit 1 of this embodiment is mounted on a vehicle using a motor as a power source, such as a hybrid vehicle (HEV), a plug-in hybrid vehicle (PHV), and an electric vehicle (EV), and is used as the power source.
  • a motor such as a hybrid vehicle (HEV), a plug-in hybrid vehicle (PHV), and an electric vehicle (EV)
  • FIG. 1 is a conceptual diagram of the motor unit 1.
  • the motor unit 1 includes a motor (main motor) 2, a gear portion 3 including a reduction gear 4 and a differential device 5, a housing 6, an oil O accommodated in the housing 6, and an inverter unit 8. .
  • a housing space 80 for housing the motor 2 and the gear portion 3 is provided inside the housing 6.
  • the housing 6 holds the motor 2 and the gear portion 3 in the accommodation space 80.
  • the accommodating space 80 is partitioned into a motor chamber 81 that accommodates the motor 2 and a gear chamber 82 that accommodates the gear portion 3.
  • the housing 6 is made of, for example, aluminum die casting.
  • the housing 6 has a partition wall 61c.
  • the accommodation space 80 is partitioned into a motor chamber 81 and a gear chamber 82 by a partition wall 61c.
  • the housing 6 has a closing portion 63 that surrounds the motor chamber 81 and faces the partition wall 61c.
  • the blocking part 63 can be removed from the housing 6. In the assembly process, the operator stores the motor 2 in the motor chamber 81 with the blocking portion 63 removed.
  • an oil reservoir P in which oil O is accumulated is provided in the lower region in the accommodation space 80.
  • the bottom 81 a of the motor chamber 81 is located above the bottom 82 a of the gear chamber 82.
  • a partition wall opening 68 is provided in the partition wall 61 c that partitions the motor chamber 81 and the gear chamber 82.
  • the partition opening 68 allows the motor chamber 81 and the gear chamber 82 to communicate with each other.
  • the partition opening 68 moves the oil O accumulated in the lower region in the motor chamber 81 to the gear chamber 82. Therefore, in this embodiment, the oil sump P is located in the lower region of the gear chamber 82.
  • the motor 2 is accommodated in the motor chamber 81 of the housing 6.
  • the motor 2 includes a rotor 20 that rotates about a motor axis J2 that extends in the horizontal direction, a stator 30 that is positioned radially outward of the rotor 20, and a pair of bearings 26 and 27 that rotatably support the rotor 20.
  • the motor 2 of this embodiment is an inner rotor type motor.
  • the rotor 20 rotates when an alternating current is supplied from a battery (not shown) to the stator 30 via the inverter unit 8.
  • the rotor 20 includes a shaft 21, a rotor core 24, and a rotor magnet (not shown).
  • the rotor 20 (that is, the shaft 21, the rotor core 24, and the rotor magnet) rotates around a motor shaft J2 that extends in the horizontal direction and the width direction of the vehicle.
  • the torque of the rotor 20 is transmitted to the gear unit 3.
  • the shaft 21 extends along the axial direction around the motor shaft J2.
  • the shaft 21 rotates about the motor shaft J2.
  • the shaft 21 is a hollow shaft in which a hollow portion 22 is provided.
  • a communication hole 23 is provided in the shaft 21.
  • the communication hole 23 extends in the radial direction and allows the hollow portion 22 to communicate with the outside of the shaft 21.
  • the shaft 21 extends across the motor chamber 81 and the gear chamber 82 of the housing 6. One end of the shaft 21 protrudes toward the gear chamber 82 side.
  • the first gear 41 of the gear portion 3 is fixed to the end portion of the shaft 21 that protrudes into the gear chamber 82.
  • the shaft 21 is rotatably supported by a pair of bearings (first bearing 26 and second bearing 27).
  • the first bearing 26 and the second bearing 27 are located in the motor chamber 81.
  • the first bearing 26 and the second bearing 27 are located on both sides in the axial direction of the shaft 21 with the rotor core 24 interposed therebetween.
  • the first bearing 26 and the second bearing 27 are held by the housing 6. More specifically, the first bearing 26 is held by the closing part 63 and the second bearing 27 is held by the partition wall 61c.
  • the rotor core 24 is configured by laminating silicon steel plates.
  • the rotor core 24 is a cylindrical body extending along the axial direction.
  • a plurality of rotor magnets (not shown) are fixed to the rotor core 24.
  • the plurality of rotor magnets are arranged along the circumferential direction with alternating magnetic poles.
  • the stator 30 has a stator core 32, a coil 31, and an insulator (not shown) interposed between the stator core 32 and the coil 31.
  • the stator 30 is held by the housing 6.
  • the stator core 32 has a plurality of magnetic pole teeth (not shown) radially inward from the inner peripheral surface of the annular yoke.
  • a coil wire is wound between the magnetic pole teeth.
  • the coil wire wound around the magnetic pole teeth constitutes the coil 31. That is, the coil 31 is wound around the stator core 32 via the insulator.
  • a coil wire extending from the coil 31 is connected to the inverter unit 8 via a bus bar (not shown).
  • the coil 31 has a first coil end 31a and a second coil end 31b.
  • the first coil end protrudes to one axial side of the stator core 32.
  • the second coil end 31 b protrudes on the other axial side of the stator core 32. That is, the coil 31 has a pair of coil ends 31 a and 31 b that protrude from both sides of the stator core 32 in the axial direction.
  • the gear unit 3 is accommodated in the gear chamber 82 of the housing 6.
  • the gear unit 3 is connected to the shaft 21 on one axial side of the motor shaft J2.
  • the gear unit 3 includes a speed reduction device 4 and a differential device 5. Torque output from the motor 2 is transmitted to the differential device 5 via the speed reducer 4.
  • the reduction gear 4 is connected to the rotor 20 of the motor 2.
  • the reduction gear 4 has a function of reducing the rotational speed of the motor 2 and increasing the torque output from the motor 2 in accordance with the reduction ratio.
  • the reduction gear 4 transmits the torque output from the motor 2 to the differential device 5.
  • the reduction gear 4 includes a first gear (intermediate drive gear) 41, a second gear (intermediate gear) 42, a third gear (file null drive gear) 43, and an intermediate shaft 45.
  • Torque output from the motor 2 is transmitted to the ring gear (gear) 51 of the differential device 5 via the shaft 21, the first gear 41, the second gear 42, the intermediate shaft 45 and the third gear 43 of the motor 2.
  • the gear ratio of each gear, the number of gears, and the like can be variously changed according to the required reduction ratio.
  • the reduction gear 4 is a parallel shaft gear type reduction gear in which the shaft cores of the respective gears are arranged in parallel.
  • the first gear 41 is provided on the outer peripheral surface of the shaft 21 of the motor 2.
  • the first gear 41 rotates with the shaft 21 around the motor shaft J2.
  • the intermediate shaft 45 extends along an intermediate axis J4 that is parallel to the motor axis J2.
  • the intermediate shaft 45 rotates around the intermediate axis J4.
  • the second gear 42 and the third gear 43 are provided on the outer peripheral surface of the intermediate shaft 45.
  • the second gear 42 and the third gear 43 are connected via an intermediate shaft 45.
  • the second gear 42 and the third gear 43 rotate around the intermediate shaft J4.
  • the second gear 42 meshes with the first gear 41.
  • the third gear 43 meshes with the ring gear 51 of the differential device 5.
  • the differential device 5 is connected to the motor 2 via the speed reducer 4.
  • the differential device 5 is a device for transmitting torque output from the motor 2 to the wheels of the vehicle.
  • the differential device 5 has a function of transmitting the same torque to the axles 55 of the left and right wheels while absorbing the speed difference between the left and right wheels when the vehicle is turning.
  • the differential 5 includes a ring gear 51, a gear housing (not shown), a pair of pinion gears (not shown), a pinion shaft (not shown), and a pair of side gears (not shown).
  • the ring gear 51 rotates around a differential axis J5 parallel to the motor axis J2. Torque output from the motor 2 is transmitted to the ring gear 51 via the reduction gear 4. That is, the ring gear 51 is connected to the motor 2 via another gear.
  • the oil O circulates in the oil passage 90 provided in the housing 6.
  • the oil O is used for lubricating the speed reducer 4 and the differential 5.
  • the oil O is used for cooling the motor 2.
  • Oil O accumulates in the lower region (namely, oil reservoir P) in the gear chamber 82. Since the oil O functions as a lubricating oil and a cooling oil, it is preferable to use an oil equivalent to an automatic transmission fluid (ATF) having a low viscosity.
  • ATF automatic transmission fluid
  • the oil passage 90 is provided in the housing 6.
  • the oil passage 90 is configured to straddle the motor chamber 81 and the gear chamber 82 of the accommodation space 80.
  • the oil path 90 is a path of the oil O that supplies the oil O from the oil reservoir P to the motor 2 and guides it to the oil reservoir P again.
  • the “oil path” means a path of the oil O that circulates in the accommodation space 80. Therefore, the “oil path” is not only a “flow path” that forms a steady oil flow in one direction in a steady manner, but also a path (for example, a reservoir) for temporarily retaining oil and the oil dripping. It is a concept that includes routes.
  • the oil passage 90 includes a first oil passage 91 that passes through the inside of the motor 2 and a second oil passage (oil passage) 92 that passes through the outside of the motor 2.
  • the first oil passage 91 and the second oil passage 92 each circulate the oil O inside the housing 6.
  • the oil O cools the motor 2 from inside and outside in the first oil passage 91 and the second oil passage 92.
  • Both the first oil path 91 and the second oil path 92 are paths for supplying the oil O from the oil reservoir P to the motor 2 and collecting it in the oil reservoir P again.
  • the oil O drops from the motor 2 and accumulates in the lower region in the motor chamber 81.
  • the oil O collected in the lower region in the motor chamber 81 moves to the lower region in the gear chamber 82 (that is, the oil reservoir P) through the partition opening 68. That is, the first oil passage 91 and the second oil passage 92 include a path for moving the oil O from the lower region in the motor chamber 81 to the lower region in the gear chamber 82.
  • first oil passage 91 In the first oil passage 91, the oil O is drawn up from the oil reservoir P by the differential device 5 and guided into the rotor 20. The centrifugal force accompanying rotation of the rotor 20 is given to the oil O inside the rotor 20. As a result, the oil O is evenly diffused toward the stator 30 surrounding the rotor 20 from the radially outer side, and cools the stator 30.
  • the first oil passage 91 has a scooping path 91a, a shaft supply path 91b, an in-shaft path 91c, and an in-rotor path 91d.
  • a first reservoir 93 is provided in the first oil passage 91.
  • the first reservoir 93 is provided in the gear chamber 82.
  • the scraping path 91 a is a path for scooping up the oil O from the oil reservoir P by the rotation of the ring gear 51 of the differential device 5 and receiving the oil O in the first reservoir 93.
  • the first reservoir 93 opens upward.
  • the first reservoir 93 receives oil O lifted up by the ring gear 51.
  • the first reservoir 93 is the oil pumped up by the second gear 42 and the third gear 43 in addition to the ring gear 51. Receive O.
  • the shaft supply path 91b guides the oil O from the first reservoir 93 to the hollow portion 22 of the shaft 21.
  • the in-shaft path 91 c is a path through which the oil O passes through the hollow portion 22 of the shaft 21.
  • the in-rotor path 91 d is a path that passes through the interior of the rotor core 24 from the communication hole 23 of the shaft 21 and scatters to the stator 30.
  • the oil O that has reached the stator 30 removes heat from the stator 30.
  • the oil O that has cooled the stator 30 is dropped downward and collected in a lower region in the motor chamber 81.
  • the oil O accumulated in the lower region in the motor chamber 81 moves to the gear chamber 82 through the partition opening 68 provided in the partition wall 61c.
  • the second oil passage 92 In the second oil passage 92, the oil O is pulled up from the oil reservoir P to the upper side of the motor 2 and supplied to the motor 2. That is, the second oil passage 92 supplies oil O to the motor 2 from above the motor 2.
  • the oil O supplied to the motor 2 removes heat from the stator 30 and cools the motor 2 while traveling along the outer peripheral surface of the stator 30.
  • the oil O transmitted along the outer peripheral surface of the stator 30 drops downward and accumulates in a lower region in the motor chamber 81.
  • the oil O in the second oil passage 92 merges with the oil O in the first oil passage 91 in the lower region in the motor chamber 81.
  • the oil O collected in the lower region in the motor chamber 81 moves to the lower region in the gear chamber 82 (that is, the oil reservoir P) through the partition opening 68.
  • the second oil passage 92 includes a first flow path 92a, a second flow path 92b, and a third flow path 92c.
  • the first flow path 92 a, the second flow path 92 b, and the third flow path 92 c pass through the wall portion of the housing 6 that surrounds the accommodation space 80.
  • the oil O passes through the first passage 92 a, the oil pump 96, the second passage 92 b, the cooler 97, the third passage 92 c, and the second reservoir 10 in this order. It passes through and is supplied to the motor 2.
  • the first flow path 92 a connects the oil reservoir P in the lower region of the accommodation space 80 and the oil pump 96.
  • the second flow path 92 b connects the oil pump 96 and the cooler 97.
  • the third flow path 92 c extends upward from the cooler 97 and opens at the top of the motor chamber 81.
  • the oil pump 96 is an electric pump that is driven by electricity.
  • the oil pump 96 sucks up the oil O from the oil reservoir P through the first flow path 92a, and the motor through the second flow path 92b, the cooler 97, the third flow path 92c, and the second reservoir 10. 2 is supplied. That is, the oil pump 96 is provided for circulating the oil O in the second oil passage 92.
  • the cooler 97 cools the oil O that passes through the second oil passage 92.
  • the cooler 97 is connected to the first flow path 92a and the second flow path 92b.
  • the first flow path 92 a and the second flow path 92 b are connected via the internal flow path of the cooler 97.
  • the cooler 97 is connected to a cooling water pipe 97j through which the cooling water cooled by a radiator (not shown) is passed.
  • the oil O passing through the inside of the cooler 97 is cooled by exchanging heat with the cooling water passing through the cooling water pipe 97j.
  • An inverter unit 8 is provided in the path of the cooling water pipe 97j.
  • the cooling water that passes through the cooling water pipe 97j cools the inverter unit 8.
  • the second reservoir 10 is located in the motor chamber 81.
  • the second reservoir 10 is located on the upper side of the motor 2.
  • the second reservoir 10 stores the oil O supplied to the motor chamber 81 through the third flow path 92c.
  • the second reservoir 10 is provided with a plurality of outlets (outlet 10a, first discharge hole 19).
  • the oil O collected in the second reservoir 10 is supplied to the motor 2 from each outlet.
  • the oil O that has flowed out from the outlet of the second reservoir 10 flows along the outer peripheral surface of the motor 2 from the upper side to the lower side and takes the heat of the motor 2. Thereby, the whole motor 2 can be cooled.
  • the oil O that has cooled the coil 31 is dropped on the lower side and collected in a lower region in the motor chamber 81.
  • the oil O accumulated in the lower region in the motor chamber 81 moves to the gear chamber 82 through the partition opening 68 provided in the partition wall 61c.
  • FIG. 2 is a cross-sectional view of the motor unit 1, and is a view of the motor 2 and the second reservoir 10 as viewed from above.
  • FIG. 3 is a perspective view of the second reservoir 10.
  • the one side in the circumferential direction is the ⁇ X direction.
  • the second reservoir 10 includes a bottom portion (main rod bottom portion 12a, side rod bottom portion 11a) extending along a horizontal plane, and wall portions (main rod wall portions 12b, 12c, Side wall portions 11b and 11c).
  • the second reservoir 10 stores the oil O supplied from the third flow path 92c to the motor chamber 81 in a space surrounded by the bottom portion and the wall portion.
  • the second reservoir 10 is provided with a plurality of outlets (the outlet 10a, the first discharge hole 19, and the second discharge hole 17) through which the oil O flows out.
  • Each outflow port causes the oil O accumulated in the second reservoir 10 to flow out, and supplies it to the motor 2 from above. That is, the second reservoir 10 supplies the oil O stored through the outlet to each part of the motor 2 from above.
  • the second reservoir 10 has a main basket 12 and a pair of side bars 11A and 11B.
  • the main rod 12 and the pair of side rods 11A and 11B each have a bowl shape having a substantially U-shaped cross section that opens upward. That is, the second reservoir 10 has a bowl shape.
  • the second reservoir 10 is made of a resin material.
  • the main rod 12 is located immediately above the stator core 32.
  • the main rod 12 is located immediately below the supply port 92ca to the motor chamber 81 of the third flow path 92c. For this reason, the main rod 12 receives the oil O supplied from the upstream side of the second oil passage 92.
  • positioned immediately above means that the object is positioned above the object and overlaps the object when viewed from the vertical direction.
  • located directly below means positioned below the object and overlapping when viewed from above and below.
  • the main shaft 12 extends along the axial direction.
  • the supply port 92ca of the third flow path 92c is located in the middle of the main rod 12 in the length direction. Therefore, the oil O supplied from the third flow path 92c to the main rod 12 branches and flows on both sides of the main rod 12 in the length direction.
  • the main rod 12 has a main rod bottom portion (bottom portion) 12a and a pair of main rod wall portions (wall portions) 12b and 12c. That is, the second reservoir 10 has a main rod bottom portion 12a and main rod wall portions 12b and 12c.
  • the main rod bottom 12a extends along a horizontal plane.
  • the main rod bottom 12a is substantially parallel to the horizontal plane.
  • the main rod bottom 12a has a substantially rectangular shape with the axial direction as the length direction. In other words, the main rod bottom portion 12 a extends along the length direction of the main rod 12.
  • the pair of main fence wall portions 12b and 12c project upward from the main fence bottom portion 12a.
  • the pair of main eaves wall portions 12b and 12c are located on both sides of the main eaves bottom portion 12a in the width direction.
  • the pair of main wall portions 12b and 12c oppose each other in the circumferential direction.
  • the width direction of the bottom portion refers to the length of each rib portion (the main rod 12 and the pair of side rods 11A and 11B) in the plane in which the bottom portion extends. It means the direction orthogonal to the direction.
  • the width dimension of a bottom part means the dimension of the width direction.
  • the pair of main wall portions 12b and 12c are classified into a first main wall portion 12b and a second main wall portion 12c.
  • the first main wall 12b is located at the end of one side of the main wall 12a in the circumferential direction.
  • the 2nd main wall 12c is located in the edge part of the circumferential direction other side of the main wall 12a.
  • the oil O collected in the main rod 12 is restricted from flowing in the circumferential direction by the pair of main rod wall portions 12b and 12c.
  • the main rod 12 is opened on both sides in the axial direction and is connected to the side rods 11A and 11B on both sides in the axial direction. For this reason, the oil O which accumulates in the main rod 12 flows on both sides in the axial direction and flows into the side rods 11A and 11B.
  • the pair of side rods 11 ⁇ / b> A and 11 ⁇ / b> B are connected to the ends on both sides in the axial direction of the main rod 12.
  • the pair of side bars 11A and 11B respectively extend in a hook shape from the ends on both sides in the axial direction of the main bar 12 toward the one side in the circumferential direction.
  • the pair of side bars 11 ⁇ / b> A and 11 ⁇ / b> B are positioned on one side and the other side of the stator core 32 in the axial direction.
  • the side rod 11A located on one side in the axial direction is located immediately above the first coil end 31a.
  • the side rod 11B located on the other axial side of the pair of side rods 11A and 11B is located immediately above the second coil end 31b.
  • first side rod 11A when one of the pair of side rods 11A and 11B located on one side in the axial direction is referred to as a first side rod 11A, and the other located on the other side in the axial direction is referred to as a second side rod 11B.
  • the first side rod 11A and the second side rod 11B have substantially the same configuration except that they are arranged on the opposite sides of the stator core 32 in the axial direction.
  • Each of the pair of scissors 11A and 11B has a scissor bottom (bottom) 11a, a pair of scissors walls (walls) 11b and 11c, and a blocking wall 11d. That is, the second reservoir 10 has a side wall bottom portion 11a, side wall walls 11b and 11c, and a blocking wall portion 11d. Further, the pair of side flanges 11A and 11B has an outlet 10a, a plurality (two in this embodiment) of recesses 18, and a plurality (two in this embodiment) of first discharge holes (discharge holes). 19, a concave groove (recess) 16, and a second discharge hole (bearing supply hole) 17 are provided. In other words, the second reservoir 10 is provided with an outlet 10 a, a recess 18, a first discharge hole 19, a groove 16, and a second discharge hole 17.
  • the side wall bottom portion 11a extends along a horizontal plane.
  • the side heel bottom portion 11a has a substantially rectangular shape with a length direction in a direction orthogonal to the axial direction. That is, the side hook bottom portion 11a extends along the length direction of the side hooks 11A and 11B.
  • the side heel bottom portion 11 a has a first region 11 aa and a second region 11 ab.
  • the first region 11aa is a region that is continuous with the main rod bottom portion 12a in the side rod bottom portion 11a.
  • the first region 11aa is substantially parallel to the horizontal plane. 1st area
  • region 11aa is located in the flow direction upstream of the oil O with respect to 2nd area
  • region 11ab is located in the circumferential direction one side with respect to 1st area
  • the second region 11ab is inclined upward as it goes to the one side in the circumferential direction.
  • Second region 11ab is curved along the outer peripheral surface of stator core 32.
  • region 11ab a width dimension becomes small as it goes to the circumferential direction one side.
  • An outflow port 10a is provided at the tip of one side in the circumferential direction of the second region 11ab. The outflow port 10 a causes the oil O accumulated in the second reservoir 10 to flow out and supplies it to the motor 2.
  • the outflow port 10a is provided on one side in the circumferential direction of the second region 11ab.
  • the second region 11ab is inclined upward as it goes toward the outflow port 10a. Therefore, the outflow port 10a is located above the main rod bottom 12a and the first region 11aa.
  • the oil O in the second reservoir 10 flows out from the outlet 10a after the liquid level reaches the height of the outlet 10a.
  • the second reservoir 10 of the present embodiment has both a function as a soot that constitutes the flow path of the oil O and a function as a storage unit that stores the oil O.
  • the second reservoir 10 functions as a soot to allow the oil O to flow and the oil O to flow out from the outlet 10a.
  • the second reservoir 10 stores the oil O. That is, the oil O in the second reservoir 10 does not flow in one direction. Even when the second reservoir 10 stores the oil O, a constant amount of the oil O flows out from the first discharge hole 19 and the second discharge hole 17 which will be described later. .
  • the pair of side wall portions 11b and 11c protrude upward from the side wall bottom portion 11a.
  • the pair of side wall portions 11b and 11c are located on both sides in the width direction of the side wall bottom portion 11a.
  • the pair of side wall portions 11b and 11c face each other in the axial direction.
  • the pair of side wall parts 11b and 11c are classified into a first side wall part 11b and a second side wall part 11c.
  • the first side wall portion 11b is located at the end of the side wall bottom portion 11a on the stator core 32 side.
  • the second side wall 11c is located at the end of the side wall bottom 11a opposite to the stator core 32. That is, of the pair of side wall portions 11b and 11c, the second side wall portion 11c is located on the opposite side of the main rod 12, and the first side wall portion 11b is on the main rod 12 side. On the other side.
  • the first side wall 11b is connected to the first main wall 12b of the main wall 12.
  • the second side wall 11c is connected to the second main wall 12c of the main wall 12.
  • the second side wall 11c has a curved portion 11ca that curves toward the second main wall 12c and is smoothly connected.
  • the bending portion 11ca is bent with a uniform radius of curvature when viewed from the vertical direction.
  • the full width of the main rod 12 overlaps the curved portion 11ca when viewed from the axial direction. For this reason, even if the oil O flows through any position in the width direction of the main rod 12, it flows into the side rods 11A and 11B and hits the curved portion 11ca. Thereby, the oil O smoothly changes the flow toward the one side in the circumferential direction along the curve of the bending portion 11ca. That is, according to the present embodiment, the oil O flowing into the side rods 11A and 11B from the main rod 12 is provided by providing the second side rod wall portion 11c with the curved portion 11ca larger than the full width of the main rod 12. Can be smoothly changed from the axial direction to the circumferential direction.
  • the radius of curvature of the curved portion 11ca is uniform. However, if the bending portion 11ca is smoothly connected to the second main wall 12c and the bending direction is uniform, the curvature radius of the bending portion 11ca does not necessarily have to be uniform.
  • the closing wall portion 11d is provided in a partial region on the opposite side of the main rod 12 in the end portion on one side in the circumferential direction of the side rod bottom portion 11a.
  • the blocking wall portion 11d protrudes upward from the side wall bottom portion 11a.
  • the blocking wall portion 11d closes a part of the opening on one side in the circumferential direction of the side rods 11A and 11B.
  • occlusion walls block the edge part of the circumferential direction one side of the recessed groove part 16 provided in the side hooks 11A and 11B.
  • Outflow port 10a is configured in a region that is not blocked by blocking wall portion 11d among the end portions on one side in the circumferential direction of side rods 11A and 11B.
  • the outflow port 10a is located in the edge part of the circumferential direction one side of the scissors 11A and 11B.
  • the outflow port 10a overlaps either one of the pair of coil ends 31a and 31b when viewed in the vertical direction.
  • the outlet 10a of the second side rod 11A is located directly above the first coil end 31a.
  • the outflow port 10a of the second side rod 11B is located immediately above the second coil end 31b.
  • the outlet 10 a supplies the oil O in the second reservoir 10 to the motor 2. More specifically, the outflow port 10a of the first side flange 11A supplies oil O to one (first coil end 31a) of the pair of coil ends 31a and 31b. The outflow port 10a of the second side rod 11B supplies oil O to the other (second coil end 31b) of the pair of coil ends 31a and 31b.
  • the second reservoir 10 of the present embodiment includes a side rod 11A having an outlet 10a that supplies oil O to the first coil end 31a, and an outlet 10a that supplies oil O to the second coil end 31b. And a scissor 11B provided with for this reason, according to the present embodiment, the pair of coil ends 31a and 31b of the stator 30 can be individually cooled, and the cooling efficiency of the stator 30 can be increased.
  • the outlet 10a of the present embodiment opens on one side in the circumferential direction.
  • the amount of oil O supplied to the motor 2 can be controlled by adjusting the amount of oil O supplied to the second reservoir 10 using the oil pump 96.
  • the motor 2 can be cooled according to the load of the motor 2 by controlling the oil pump 96.
  • cooling according to the temperature of the motor 2 can be performed.
  • two concave portions 18 and two first discharge holes 19 are provided in the first region 11aa of the side wall bottom portion 11a.
  • the recess 18 is substantially rectangular when viewed from above.
  • the two recessed portions 18 are arranged side by side along the length direction (circumferential direction) of the side wall bottom portion 11a.
  • the first discharge hole 19 penetrates the side wall bottom portion 11a.
  • the first discharge hole 19 is circular when viewed from above.
  • the two first discharge holes 19 are located inside different recesses 18 as viewed from above.
  • FIG. 4 is a schematic cross-sectional view of the side gutter bottom portion 11a.
  • the recessed portion 18 is recessed downward on the upper surface of the side wall bottom portion 11a.
  • the upper surface 18a of the recess 18 extends along a horizontal plane.
  • the first discharge hole 19 penetrates the side wall bottom portion 11a in the vertical direction.
  • the first discharge hole 19 opens on the upper surface 18a of the recess 18 on the upper side.
  • the first discharge hole 19 opens on the lower side just above one of the pair of coil ends 31a and 31b.
  • the first discharge hole 19 of the first scissor 11A is located immediately above the first coil end 31a.
  • the first discharge hole 19 of the second scissor 11B is located immediately above the second coil end 31b.
  • the first discharge hole 19 allows the oil O in the second reservoir 10 to pass therethrough, and further drops it to the lower side to supply it to the motor 2. More specifically, the first discharge hole 19 supplies the oil O in the second reservoir 10 to the coil ends 31a and 31b.
  • the oil O supplied to the coil 31 penetrates from the gap between the conducting wires constituting the coil 31.
  • the oil O soaked in the coil 31 removes heat from the coil while penetrating the entire coil 31 by capillary force and gravity acting between the conductors. Further, the oil O accumulates at the lowermost part of the inner peripheral surface of the stator core 32 and drops from the axial ends of the coil 31.
  • Oil O in the side rods 11A and 11B flows along the length direction of the side rods 11A and 11B.
  • the flow velocity of the oil O flowing through the side rods 11A and 11B increases.
  • the 1st discharge hole 19 opens to the upper surface 18a of the recessed part 18 provided in the side wall bottom part 11a.
  • the oil O poured into the recess 18 temporarily stays in the recess 18 without climbing the step. Further, the oil O staying in the recess 18 can only flow out from the first discharge hole 19. For this reason, the oil O easily flows out from the first discharge holes 19. As a result, regardless of the increase or decrease in the amount of oil O supplied to the second reservoir 10, the oil O can be steadily flowed out from the first discharge hole 19, and the cooling efficiency of the coil 31 is increased.
  • the two recesses 18 are arranged side by side along the length direction of the scissors 11A and 11B. That is, the plurality of recesses 18 are arranged along the flow direction of the oil O in the second reservoir 10. Oil O is poured into each of the two recesses 18.
  • the flow direction of the oil O means the length direction of each rod (the main rod 12 and the side rods 11A and 11B) of the second reservoir 10.
  • the second reservoir 10 supplies oil O to the motor 2 through the outlet 10a and the first discharge hole 19.
  • the outlet 10a and the first discharge hole 19 supply oil to one region and the other region, respectively, across the motor shaft J2.
  • the entire motor 2 can be cooled by the oil O that flows downward along the surface of the motor 2.
  • the side gutter bottom portion 11 a is provided with a concave groove portion 16 and a second discharge hole 17.
  • the concave groove portion 16 is a groove that opens upward.
  • the recessed groove portion 16 extends linearly along the circumferential direction.
  • the recessed groove portion 16 is located on one side in the axial direction of the inclined second region 11ab, but extends in the horizontal direction without being inclined.
  • the concave groove portion 16 is located at the end of the side wall bottom portion 11a opposite to the main rod 12. That is, the groove 16 extends along the side wall 11b on the opposite side of the main wall 12 out of the pair of side walls 11b and 11c.
  • the concave groove portion 16 provided in the first side flange 11A is located immediately above the first bearing 26.
  • the recessed groove portion 16 provided in the second side rod 11 ⁇ / b> B is located immediately above the second bearing 27.
  • the second discharge hole 17 penetrates the side wall bottom portion 11a in the vertical direction.
  • the second discharge hole 17 is provided in the groove 16. That is, the second discharge hole 17 opens into the groove 16 on the upper side.
  • the second discharge hole 17 opens on the lower side just above one of the pair of bearings 26 and 27.
  • the second discharge hole 17 of the first scissor 11A opens immediately above the first bearing 26 and supplies the oil O in the second reservoir 10 to the first bearing 26.
  • the second discharge hole 17 of the second side flange 11 ⁇ / b> B opens immediately above the second bearing 27 and supplies the oil O in the second reservoir 10 to the second bearing 27.
  • the second discharge hole 17 provided in one side rod supplies oil O to one bearing (first bearing 26) and the other side rod (second side rod).
  • the second discharge hole 17 provided in the side rod 11B supplies the oil O to the other bearing (second bearing 27).
  • FIG. 5 is a sectional view of the motor unit 1 viewed along a plane orthogonal to the axial direction.
  • the path of oil supplied from the second discharge hole 17 of the second scissor 11B to the second bearing 27 will be described with reference to FIG. Since the path of oil supplied from the second discharge hole 17 of the first side rod 11A to the first bearing 26 is the same as this, the description thereof is omitted.
  • the second bearing 27 has an inner ring 27a, an outer ring 27b, and a plurality of steel balls 27c arranged between the inner ring 27a and the outer ring 27b in the radial direction.
  • the second bearing 27 holds the shaft 21 in the inner ring 27a.
  • the second bearing 27 is held by the housing 6 in the outer ring 27b.
  • the housing 6 has a bearing holding portion 69 extending in a cylindrical shape along the axial direction.
  • the bearing holding portion 69 is provided in the partition wall 61 c of the housing 6.
  • the bearing holding part 69 surrounds the second bearing 27 from the outside in the radial direction.
  • the bearing holding portion 69 holds the outer ring 27 b of the second bearing 27.
  • the bearing holding portion 69 is provided with a through hole 69a.
  • the through hole 69a penetrates the bearing holding portion 69 in the radial direction. Further, the through hole 69a opens upward.
  • the through hole 69a exposes a part of the outer peripheral surface of the outer ring 27b of the second bearing 27 to the upper side.
  • the through hole 69a of the present embodiment is a notch that extends along the axial direction with a uniform cross section and opens at the axial end of the bearing holding portion 69.
  • the second discharge hole 17 of the second reservoir 10 is located above the through hole 69a.
  • the oil O that has passed through the second discharge hole 17 reaches the through hole 69a. That is, the second discharge hole 17 supplies oil O to the through hole 69a.
  • the oil O that has reached the through-hole 69a reaches the steel ball 27c and the inner ring 27a along the surface of the outer ring 27b of the bearing and improves the lubricity of the second bearing 27. That is, according to the present embodiment, the oil O can be supplied from the second reservoir 10 to the second bearing 27 to increase the rotational efficiency of the second bearing 27.
  • the oil O is supplied to the first bearing 26 and the second bearing 27 from the second discharge hole 17 penetrating the side wall bottom of the second reservoir 10.
  • the 2nd discharge hole 17 is a through-hole penetrated along an up-down direction. Therefore, the second discharge hole 17 allows the oil O to flow out at a substantially constant flow rate, regardless of the liquid level of the oil O in the second reservoir 10 as compared with the outlet 10a that opens in the circumferential direction. . Therefore, according to the present embodiment, a substantially constant amount of oil O can be supplied per unit time from the second reservoir 10 to the first bearing 26 and the second bearing 27.
  • the 2nd discharge hole 17 of this embodiment is located directly above the through-hole 69a, and drops the oil O to the through-hole 69a, and supplies it directly.
  • the second discharge hole 17 may transmit the dropped oil O to the inner wall surface of the housing 6 and supply the oil O to the through hole 69a.
  • the second discharge hole 17 of the present embodiment is provided in the groove 16. Since the recessed groove portion 16 is formed to be recessed downward from the bottom of the second reservoir 10, the oil O is easily collected when the oil O is supplied to the second reservoir 10. According to the present embodiment, since the second discharge hole 17 is provided in the concave groove portion 16, the oil O is discharged before the other outlet (for example, the outlet 10 a) of the second reservoir 10. Thereby, the lubricity of the 1st bearing 26 and the 2nd bearing 27 can be improved at the time of starting of the motor unit 1.
  • the end portion on one side in the circumferential direction of the concave groove portion 16 is closed by the blocking wall portion 11d. For this reason, the oil O stays in the groove 16. For this reason, the second discharge hole 17 reduces the amount of oil O accumulated in the second reservoir 10, and even after the outflow of oil O from another outlet (for example, outlet 10a) stops.
  • One bearing 26 and a second bearing 27 can be supplied.
  • the second discharge hole 17 of the present embodiment is located in the vicinity of the blocking wall portion 11d.
  • the oil O flowing in the length direction of the scissors 11A and 11B in the concave groove portion 16 is blocked by the blocking wall portion 11d. For this reason, the flow velocity of the oil O is reduced in the vicinity of the blocking wall portion 11d.
  • the second discharge hole 17 is positioned in the vicinity of the blocking wall portion 11d, whereby the flow rate of the oil O is reduced on the upper side of the second discharge hole 17, and the second discharge hole 17 Oil O can be dripped constantly.
  • the groove 16 is located at the end of the side rods 11A and 11B opposite to the main rod 12 and extends along the second side wall 11c.
  • the oil that has flowed from the main rod 12 into the side rods 11A and 11B changes the flow direction to one side in the circumferential direction at the second side rod wall portion 11c, and flows along the second side rod wall portion 11c. For this reason, even when the amount of oil O supplied to the second reservoir 10 is small, the oil O tends to accumulate in the recessed groove portion 16. That is, the oil O accumulates in the recessed groove portion 16 before the oil O reaches the other areas of the second reservoir 10.
  • the oil O can be discharged from the second discharge hole 17 before the other outlets (the outlet 10a and the first discharge holes 19).
  • the motor unit 1 drives the oil pump 96 before driving the motor 2. That is, the oil pump 96 supplies the oil O to the second reservoir 10 before the rotor 20 of the motor 2 starts to rotate. Further, as described above, the second discharge hole 17 discharges the oil O prior to the other outlet 10a. According to this embodiment, the motor 2 can be driven after the lubricity of the first bearing 26 and the second bearing 27 is improved by the oil O.
  • the motor unit 1 If the motor unit 1 is not used for a long period of time, the oil O does not circulate. Therefore, the oil O from the first bearing 26 and the second bearing 27 that support the shaft 21 comes off, and the first bearing 26 and the second bearing There is a possibility that the lubricity of No. 27 is lowered. According to the present embodiment, even in the first drive after the motor unit 1 has not been started for a long time, the rotor 20 can be rotated after the oil O is supplied to the first bearing 26 and the second bearing 27. it can.
  • the first side wall 11b of the side bars 11A and 11B has a facing surface 11ba facing the stator core 32 side.
  • the facing surface 11ba faces the end surface of the stator core 32 that faces in the axial direction.
  • the facing surface 11ba of the first side flange 11A faces the end surface 32a facing the one axial side of the stator core 32.
  • the facing surface 11ba of the second side rod 11B faces the end surface 32b facing the other axial side of the stator core 32. That is, the pair of side bars 11A and 11B have opposing surfaces 11ba that face the end surfaces 32a and 32b facing the one side and the other side of the stator core 32 in the axial direction.
  • a protruding portion (first protruding portion) 15 that protrudes toward the stator core 32 is provided on each of the opposing surfaces 11ba of the pair of side bars 11A and 11B. Each protrusion 15 contacts the stator core 32 at the tip surface.
  • the first side flange 11A contacts the end face 32a facing the one axial side of the stator core 32 at the protrusion 15.
  • the second side rod 11B is in contact with the end face 32b facing the other axial side of the stator core 32 at the protrusion 15. That is, the pair of side bars 11A and 11B are in contact with the end surface 32a facing the one side in the axial direction of the stator core 32 and the end surface 32b facing the other side, respectively.
  • the second reservoir 10 can sandwich the stator core 32 from both sides in the axial direction by the side hooks 11 ⁇ / b> A and 11 ⁇ / b> B and hold the stator core 32 on the stator core 32.
  • the side bars 11A and 11B are in contact with the stator core 32 at the protrusions 15 respectively.
  • the contact position between the side rods 11 ⁇ / b> A and 11 ⁇ / b> B and the stator core 32 can be limited to the tip of the protrusion 15.
  • the lateral flanges 11 ⁇ / b> A and 11 ⁇ / b> B and the stator core 32 can be reliably brought into contact with each other by managing the dimensional accuracy of the tip surface of the protrusion 15.
  • the main rod bottom portion 12a of the main rod 12 has a plurality of support ribs (second protruding portions) 14 protruding downward. That is, the second reservoir 10 has a support rib 14 that protrudes downward.
  • the support rib 14 extends in a rib shape along the circumferential direction.
  • the support rib 14 has a support surface 14a facing downward.
  • the support surface 14a is curved along the circumferential direction.
  • the support rib 14 contacts the outer peripheral surface of the stator core 32 on the support surface 14a.
  • the second reservoir 10 contacts the outer peripheral surface of the stator core 32 at the support rib 14. Therefore, the second reservoir 10 can be prevented from rotating around the protrusion 15 with respect to the stator core 32. That is, according to the present embodiment, the second reservoir 10 can be held in the circumferential direction by the stator core 32.
  • the support rib 14 extends in a rib shape along the circumferential direction. Further, the support surface 14 a of the support rib 14 that contacts the outer peripheral surface of the stator core 32 is curved along the outer peripheral surface of the stator core 32. Therefore, according to the present embodiment, the contact surface between the support rib 14 and the outer peripheral surface of the stator core 32 is secured long in the circumferential direction, and the stability of holding the second reservoir 10 by the stator core 32 can be improved.
  • a contact rib (third projecting portion) 13 is provided on the curved portion 11ca provided on the second side wall 11c of the side walls 11A and 11B. That is, the second reservoir 10 has the contact rib 13.
  • the contact rib 13 protrudes on the other side in the circumferential direction with respect to the curved portion 11ca.
  • the contact rib 13 extends in a rib shape along the axial direction.
  • the second reservoir 10 contacts the outer peripheral surface of the stator core 32 at the support rib 14. Therefore, the second reservoir 10 is sandwiched between the outer peripheral surface of the stator core 32 and the inner wall surface 6 a of the housing 6 and is held by the stator core 32 and the housing 6. According to this embodiment, the second reservoir 10 can be stably held in the housing 6.
  • the housing 6 is formed by casting such as die casting. For this reason, the inner wall surface 6a of the housing 6 in contact with the contact rib 13 becomes a tapered surface that inclines radially inward from the one side in the axial direction (the closed portion 63 side) toward the other side (the partition wall 61c side). Further, in the manufacturing process of the motor unit 1 of the present embodiment, the second reservoir 10 is moved in the axial direction together with the motor 2 in a state where the second reservoir 10 is assembled and held in the motor 2 and accommodated in the motor chamber 81 of the housing 6. Is done. Therefore, in the process of housing the second reservoir 10 in the motor chamber 81, the contact rib 13 of the second side rod 11B receives stress from the inner wall surface 6a toward the one side in the axial direction.
  • the contact rib 13 extends in a rib shape along the axial direction. For this reason, the contact rib 13 has high rigidity along the axial direction. Even if the contact rib 13 receives stress in the axial direction from the inner wall surface 6a in the step of housing the second reservoir 10 in the motor chamber 81, damage is suppressed. Further, the contact rib 13 extends in a rib shape along the axial direction, so that it deforms appropriately in the radial direction when contacting the inner wall surface 6a. Thereby, since the contact rib 13 is in contact with the inner wall surface 6a, the main rod 12 and the side rods 11A and 11B can be prevented from being deformed.
  • FIG. 6 is a cross-sectional view of a modified recess 118 and first discharge hole 119 that can be employed in the second reservoir 10 described above.
  • symbol is attached
  • the concave portion 118 and the first discharge hole 119 of the present modification are provided in the side wall bottom portion 11a.
  • the recessed portion 118 is recessed downward on the upper surface of the side wall bottom portion 11a.
  • the upper surface 118a of the recess 118 has a horizontal surface portion 118aa and a tapered surface portion 118ab.
  • the horizontal plane portion 118aa extends along a horizontal plane.
  • the tapered surface portion 118ab is inclined to one side in the circumferential direction as it goes upward.
  • the tapered surface portion 118ab is inclined to face one side in the circumferential direction.
  • the oil O flows through the side walls 11A and 11B with the one side in the circumferential direction as the flow direction. Accordingly, the tapered surface portion 118ab is inclined to face the upstream side in the flow direction of the oil O in the second reservoir 10.
  • the first discharge hole 119 penetrates the side wall bottom portion 11a.
  • the first discharge hole 119 extends in the thickness direction of the tapered surface portion 118ab.
  • the first discharge hole 119 opens to the tapered surface portion 118ab of the concave portion 118 on the upper side.
  • the first discharge hole 119 opens on the lower side just above one of the pair of coil ends 31a and 31b.
  • the first discharge hole 119 passes and drops the oil O in the second reservoir 10 to the lower side, and supplies it to either one of the pair of coil ends 31a and 31b.
  • the first discharge hole 119 opens on the upper surface 118a of the recess 118 provided in the side wall bottom portion 11a.
  • the oil O flowing through the side rods 11 ⁇ / b> A and 11 ⁇ / b> B reaches the recess 118, the oil O is poured into the recess 118 from the step of the recess 118.
  • the oil O poured into the concave portion 118 temporarily stays in the concave portion 118 without climbing the step. Further, the oil O staying in the recess 18 can only flow out from the first discharge hole 19. For this reason, the oil O easily flows out from the first discharge holes 119.
  • the oil O can be steadily discharged from the first discharge hole 119, and the cooling efficiency of the coil 31 is increased.
  • the first discharge hole 119 of this modification opens in the tapered surface portion 118ab.
  • the tapered surface portion 118ab faces the upstream side in the flow direction of the oil O. Therefore, according to this modification, when the flow rate of the oil O is increased, the oil O can be smoothly discharged from the first discharge hole 119 using the flow rate of the oil O. Thereby, when the supply amount of the oil O to the 2nd reservoir
  • the second reservoir 10 has the pair of side bars 11A and 11B has been described.
  • the second reservoir only needs to have a side rod on one side or the other side in the axial direction with respect to the main rod.
  • the second reservoir is configured in an L shape when viewed from above and below.
  • second discharge holes (bearing supply holes), 18,118 Recesses, 18a, 118a ... Upper surface, 19 ... First discharge hole (discharge hole), 20 ... Rotor, 21 ... Shaft, 26, 27 ... Bearing, 27b ... Outer ring, 30 ... Stator, 31 ... Coil, 31a, 31b ... Coil end, 32 ... Stator core, 32a, 32b ... End face 69 ... Bearing holding portion, 69a ... Through hole, 92 ... Second oil passage (oil passage), 98 ... Second reservoir (reservoir), 11ba ... Opposing surface, 11ca ... Curved portion, 118ab ... Tapered surface portion, J2 ... Motor shaft, O ... oil

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Motor Or Generator Cooling System (AREA)
PCT/JP2019/012648 2018-04-25 2019-03-26 モータユニット WO2019208065A1 (ja)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112865392A (zh) * 2019-11-12 2021-05-28 日本电产株式会社 马达单元

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008072881A (ja) * 2006-09-15 2008-03-27 Toyota Motor Corp モータ
JP2016174443A (ja) * 2015-03-16 2016-09-29 株式会社デンソー 回転電機
JP2018027003A (ja) * 2016-08-09 2018-02-15 日本電産株式会社 モータユニット

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008072881A (ja) * 2006-09-15 2008-03-27 Toyota Motor Corp モータ
JP2016174443A (ja) * 2015-03-16 2016-09-29 株式会社デンソー 回転電機
JP2018027003A (ja) * 2016-08-09 2018-02-15 日本電産株式会社 モータユニット

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112865392A (zh) * 2019-11-12 2021-05-28 日本电产株式会社 马达单元

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