WO2011115219A1 - Dispositif à roulement de roue ayant un moteur-roue incorporé - Google Patents

Dispositif à roulement de roue ayant un moteur-roue incorporé Download PDF

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Publication number
WO2011115219A1
WO2011115219A1 PCT/JP2011/056417 JP2011056417W WO2011115219A1 WO 2011115219 A1 WO2011115219 A1 WO 2011115219A1 JP 2011056417 W JP2011056417 W JP 2011056417W WO 2011115219 A1 WO2011115219 A1 WO 2011115219A1
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WIPO (PCT)
Prior art keywords
wheel
rolling
motor
wheel bearing
bearing device
Prior art date
Application number
PCT/JP2011/056417
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English (en)
Japanese (ja)
Inventor
清武 柴田
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Ntn株式会社
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Publication of WO2011115219A1 publication Critical patent/WO2011115219A1/fr

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B27/00Hubs
    • B60B27/0094Hubs one or more of the bearing races are formed by the hub
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B27/00Hubs
    • B60B27/0005Hubs with ball bearings
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B27/00Hubs
    • B60B27/0015Hubs for driven wheels
    • B60B27/0021Hubs for driven wheels characterised by torque transmission means from drive axle
    • B60B27/0026Hubs for driven wheels characterised by torque transmission means from drive axle of the radial type, e.g. splined key
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B27/00Hubs
    • B60B27/0073Hubs characterised by sealing means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K7/00Disposition of motor in, or adjacent to, traction wheel
    • B60K7/0007Disposition of motor in, or adjacent to, traction wheel the motor being electric
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C33/00Parts of bearings; Special methods for making bearings or parts thereof
    • F16C33/72Sealings
    • F16C33/76Sealings of ball or roller bearings
    • F16C33/768Sealings of ball or roller bearings between relatively stationary parts, i.e. static seals
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C33/00Parts of bearings; Special methods for making bearings or parts thereof
    • F16C33/72Sealings
    • F16C33/76Sealings of ball or roller bearings
    • F16C33/78Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members
    • F16C33/7869Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members mounted with a cylindrical portion to the inner surface of the outer race and having a radial portion extending inward
    • F16C33/7873Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members mounted with a cylindrical portion to the inner surface of the outer race and having a radial portion extending inward with a single sealing ring of generally L-shaped cross-section
    • F16C33/7876Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members mounted with a cylindrical portion to the inner surface of the outer race and having a radial portion extending inward with a single sealing ring of generally L-shaped cross-section with sealing lips
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B2380/00Bearings
    • B60B2380/10Type
    • B60B2380/12Ball bearings
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B2380/00Bearings
    • B60B2380/70Arrangements
    • B60B2380/73Double track
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B2380/00Bearings
    • B60B2380/70Arrangements
    • B60B2380/76Twin or multiple bearings having different diameters
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K7/00Disposition of motor in, or adjacent to, traction wheel
    • B60K2007/0038Disposition of motor in, or adjacent to, traction wheel the motor moving together with the wheel axle
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K7/00Disposition of motor in, or adjacent to, traction wheel
    • B60K2007/0092Disposition of motor in, or adjacent to, traction wheel the motor axle being coaxial to the wheel axle
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60LPROPULSION OF ELECTRICALLY-PROPELLED VEHICLES; SUPPLYING ELECTRIC POWER FOR AUXILIARY EQUIPMENT OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRODYNAMIC BRAKE SYSTEMS FOR VEHICLES IN GENERAL; MAGNETIC SUSPENSION OR LEVITATION FOR VEHICLES; MONITORING OPERATING VARIABLES OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRIC SAFETY DEVICES FOR ELECTRICALLY-PROPELLED VEHICLES
    • B60L2220/00Electrical machine types; Structures or applications thereof
    • B60L2220/40Electrical machine applications
    • B60L2220/44Wheel Hub motors, i.e. integrated in the wheel hub
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60LPROPULSION OF ELECTRICALLY-PROPELLED VEHICLES; SUPPLYING ELECTRIC POWER FOR AUXILIARY EQUIPMENT OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRODYNAMIC BRAKE SYSTEMS FOR VEHICLES IN GENERAL; MAGNETIC SUSPENSION OR LEVITATION FOR VEHICLES; MONITORING OPERATING VARIABLES OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRIC SAFETY DEVICES FOR ELECTRICALLY-PROPELLED VEHICLES
    • B60L2220/00Electrical machine types; Structures or applications thereof
    • B60L2220/50Structural details of electrical machines
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60LPROPULSION OF ELECTRICALLY-PROPELLED VEHICLES; SUPPLYING ELECTRIC POWER FOR AUXILIARY EQUIPMENT OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRODYNAMIC BRAKE SYSTEMS FOR VEHICLES IN GENERAL; MAGNETIC SUSPENSION OR LEVITATION FOR VEHICLES; MONITORING OPERATING VARIABLES OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRIC SAFETY DEVICES FOR ELECTRICALLY-PROPELLED VEHICLES
    • B60L2270/00Problem solutions or means not otherwise provided for
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C19/00Bearings with rolling contact, for exclusively rotary movement
    • F16C19/02Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows
    • F16C19/14Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load
    • F16C19/18Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls
    • F16C19/181Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact
    • F16C19/183Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact with two rows at opposite angles
    • F16C19/184Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact with two rows at opposite angles in O-arrangement
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C2326/00Articles relating to transporting
    • F16C2326/01Parts of vehicles in general
    • F16C2326/02Wheel hubs or castors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C33/00Parts of bearings; Special methods for making bearings or parts thereof
    • F16C33/72Sealings
    • F16C33/76Sealings of ball or roller bearings
    • F16C33/80Labyrinth sealings
    • F16C33/805Labyrinth sealings in addition to other sealings, e.g. dirt guards to protect sealings with sealing lips
    • 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 an in-wheel motor built-in wheel bearing device in which a wheel bearing, a reducer, and a motor are combined, and more particularly, to improve sealing performance in an electric vehicle and to improve durability.
  • the present invention relates to a wheel bearing device.
  • the in-wheel motor-equipped wheel bearing device includes a wheel bearing A that rotatably supports the hub of the drive wheel 100, a motor B as a rotational drive source, and the rotation of the motor B that is decelerated and transmitted to the hub.
  • a reduction gear C that performs braking and a brake D that applies braking force to the hub are arranged on the central axis O of the drive wheel 100.
  • the side closer to the outer side of the vehicle when assembled to the vehicle is referred to as an outer side (left side in FIG. 8), and the side closer to the center is referred to as an inner side (right side in FIG. 8).
  • the wheel bearing A includes an outer member 101 having a double row outer raceway surface 101a formed on the inner periphery, and a double row inner raceway surfaces 103a and 104a facing the double row outer raceway surface 101a.
  • the inner member 102 is formed, and a double row of balls 105 accommodated between the rolling surfaces of the inner member 102 and the outer member 101 so as to roll freely.
  • a seal 106 is attached and sealed in an opening on the outer side of the annular space formed between the outer member 101 and the inner member 102.
  • the outer member 101 serving as a stationary side race ring integrally has a vehicle body attachment flange 101b attached to the outer casing 107 of the reduction gear C on the outer periphery, and is fixed via an attachment bolt (not shown). .
  • the inner member 102 serving as the rotation-side raceway includes a hub wheel 103 and an inner ring member 104 fitted to the hub wheel 103.
  • the hub wheel 103 integrally has a wheel mounting flange 108 for mounting the drive wheel 100 on the outer side end portion, and an outer side inner rolling surface 103a is formed on the outer periphery.
  • a hub bolt 108a for mounting the wheel mounting flange 108 driving wheel 100 is implanted.
  • the inner ring member 104 has an inner-side inner rolling surface 104a formed on the outer periphery, and is fixed integrally with the hub ring 103 by plastic coupling such as enlarged diameter caulking.
  • the motor B is an axial gap type in which an axial gap is provided between a stator 110 fixed to a cylindrical casing 109 and a rotor 112 attached to an output shaft 111.
  • the output shaft 111 is cantilevered by a pair of bearings 114 on the inner casing 113 of the reduction gear C.
  • the inner side end of the clearance between the output shaft 111 and the casing 113 is sealed with a seal 115, and the opening on the inner side of the bottom 116 of the casing 109 is closed with a cap 117.
  • the reducer C is a cycloid reducer, and includes an input shaft 119 having an eccentric shaft 118, an outer pin 120 passed between the casings 107 and 113, an inner pin 121 attached to the inner ring member 104, and each pin. And two curved plates 124 and 125 which are rotatably supported via bearings 122 and 123 and have a undulating trochoidal curve.
  • the input shaft 119 is spline-coupled with the output shaft 111 of the motor B and is integrally rotated.
  • the outer diameter of the wheel bearing A is smaller than the outer diameter of the casing 107 of the reduction gear C and the casing 109 of the motor B.
  • rainwater and muddy water are more likely to collect at the outer diameter portion of the outer member 101 than in a conventional wheel bearing.
  • the wheel bearing A is sealed by a seal 106 mounted on the outer side, when foreign matter such as rainwater enters the inside through the seal 106, the wheel bearing A is directly connected to the speed reducer C or the motor B. Therefore, not only the bearing portion but also the speed reducer C and the motor B may be damaged.
  • FIG. 1 A typical example of a wheel bearing device having such a seal structure is shown in FIG.
  • This wheel bearing device has an outer member 150 that is non-rotatably attached to the vehicle body side via a knuckle and has outer rows 150a and 150a of double rows formed on the inner periphery.
  • Inner rolling surfaces 153a facing the outer rolling surfaces 150a and 150a of the double row of the outer member 150 are formed on the outer periphery of the hub wheel 153, and a wheel mounting flange for mounting a brake disk and a wheel (not shown) at one end. 154 protrudes radially outward.
  • the seal structure 155 includes a side surface 154 a on the outer member 150 side of the wheel mounting flange 154, a core metal 156 fitted to the inner peripheral surface of the outer member 150, and an elastic seal body 157 fixed to the core metal 156. It consists of and.
  • the elastic seal body 157 includes two axial lip portions 158 that contact the side surface 154a of the wheel mounting flange 154 in the axial direction, and a radial lip portion 159 that contacts the outer peripheral surface of the hub wheel 153 in the radial direction. Yes.
  • the cored bar 156 has a circular arc shape (a crescent shape) that is partially extended along the side surface 154 a of the wheel mounting flange 154 so as to protrude radially outward from the outer peripheral surface 150 b of the outer member 150.
  • a dam member 156a is formed, and the dam member 156a is in close contact with the end surface of the outer member 150 on the side surface 154a side. Further, the dam member 156a is formed only above the axis.
  • Such a seal structure 155 is, for example, when the muddy water is applied to the outer member 150 during traveling of the vehicle, a part of the cored bar 156 has a radially outwardly upward direction from the outer peripheral surface 150b of the outer member 150. Since the dam member 156a extended so as to protrude is formed, the muddy water is prevented from flowing to the outer member 150 and the side surface 154a of the wheel mounting flange 154 by the dam member 156a. Therefore, the muddy water of the outer member 150 does not flow and collect in the axial lip portion 158, and the sealing performance can be maintained (see, for example, Patent Document 2).
  • the present invention has been made in view of such conventional problems, and an object of the present invention is to provide an in-wheel motor-equipped wheel bearing device with improved durability and improved durability in an electric vehicle. .
  • the invention according to claim 1 of the present invention is an in-wheel motor built-in wheel bearing in which a wheel bearing, a speed reducer, and a motor are arranged coaxially with respect to the center axis of the wheel.
  • the wheel bearing is attached to the casing of the speed reducer on the outer periphery, the outer member integrally formed with the double row outer rolling surface on the inner periphery, and the wheel is attached to one end.
  • a hub ring having a small-diameter step portion extending in the axial direction on the outer periphery, and at least one inner ring press-fitted into the small-diameter step portion of the hub ring.
  • An inner member in which a double row inner rolling surface facing the outer rolling surface of the row is formed, and a double row accommodated in a freely rollable manner between both rolling surfaces of the inner member and the outer member An annular space formed between the rolling element and the outer member and the inner member And a seal attached to an opening portion of the outer side groove on the outer periphery of the casing of the reduction gear is formed.
  • An in-wheel type motor-equipped wheel bearing device in which a wheel bearing, a speed reducer, and a motor are coaxially arranged with respect to the center axis of the wheel as described above, and the wheel bearing is disposed on the outer periphery of the speed reducer casing.
  • a small-diameter step having an outer member integrally formed with a double row outer raceway on the inner periphery and a wheel mounting flange for attaching a wheel to one end and extending in the axial direction on the outer periphery.
  • the groove is formed in the circumference, even if rain or muddy water is applied to the casing of the speed reducer during traveling of the vehicle, it can be prevented from flowing between the wheel mounting flange through the outer peripheral surface, It is possible to provide an in-wheel motor-equipped wheel bearing device that improves the sealing performance of a seal in an electric vehicle over a long period of time and has improved durability.
  • the outer peripheral surface is transmitted. It can prevent flowing between the wheel mounting flanges, improve the sealing performance of the seal in the electric vehicle over a long period of time, and enhance the durability.
  • the outer member integrally has a vehicle body mounting flange for mounting on the outer periphery of the speed reducer casing, and the double wheel is mounted on the outer periphery of the hub wheel. If the inner rolling surface opposite to one of the outer rolling surfaces is directly formed and a concave groove is formed on the outer periphery of the outer side end of the outer member, the outer member can be used while the vehicle is running. Even if rainwater or muddy water is applied, it can be prevented from flowing between the wheel mounting flange and the outer peripheral surface.
  • the concave groove is formed at least in the range of 180 ° on the side opposite to the road surface, rainwater and muddy water that has traveled along the outer peripheral surface are lowered along the concave groove. Almost discharged.
  • the pitch circle diameter of the outer rolling element row of the double row rolling element rows is set larger than the pitch circle diameter of the inner rolling element row.
  • the bearing rigidity of the outer side portion can be increased compared to the inner side. The life of the bearing can be extended.
  • the rolling element diameter of the outer rolling element row is set smaller than the rolling element diameter of the inner rolling element row, the outer member The expansion of the outer diameter of the tube can be suppressed, and the weight and size can be reduced.
  • the seal includes a cylindrical portion that is press-fitted into the inner periphery of the outer side end of the outer member, and an inner diameter that is bent and extends radially inward from the cylindrical portion. And a seal member integrally formed by vulcanization and adhesion to the inner diameter portion of the core metal, the seal member extending in a radially outward direction, A side lip that is slidably contacted with an inner base portion of the wheel mounting flange via an axial shimiro, a dust lip that extends radially inwardly toward the inner diameter side of the side lip, and an inward bearing side And a base portion on the inner side of the wheel mounting flange is formed in a curved surface having an arc-shaped cross section, and the side lip and dust lip are slidably contacted with the base portion via a predetermined axial squeeze.
  • the outer periphery of the outer member on the outer side is formed in a stepped portion from the end surface to the vicinity of the position where the seal is fitted, and the inner diameter of the stepped portion is fitted to the seal.
  • a stepped portion is formed between the base and the inner side surface of the wheel mounting flange, and the stepped portion of the outer member has a slight radial clearance in the stepped portion. If a substantially L-shaped labyrinth seal is formed, it is possible to prevent foreign matters such as rainwater and muddy water from entering the sliding contact portion of the seal, and to improve the sealing performance.
  • the sealing member integrally includes a covering portion that covers the exposed surface of the core metal, and the covering portion is formed from the inner diameter portion of the core metal to the cylindrical portion. If it is formed over the end and is set to be slightly larger than the outer diameter of the cylindrical portion, the airtightness between the seal and the outer member can be improved.
  • the outer member is fitted into a knuckle, and a mounting flange for being attached to a casing of the speed reducer is integrally provided on the outer periphery of the knuckle.
  • the member is composed of the hub wheel and a pair of inner rings press-fitted into a small-diameter step portion of the hub wheel, and a groove is formed in a 180 ° range at least on the opposite road surface side of the outer periphery of the outer end of the knuckle.
  • the sealing performance can be further improved.
  • a drive shaft constituting the speed reducer is connected to the hub wheel of the wheel bearing so as to transmit torque, and the speed reducer comprises a cycloid speed reducer, and is eccentric.
  • An input shaft having a shaft, a plurality of outer pins passed between the reducer casing and the motor casing, a plurality of inner pins attached to the drive shaft, and a rolling bearing on each pin
  • Two curved plates that are rotatably supported, and these curved plates are formed in a wavy trochoidal curve with a gentle outer shape and mounted on the eccentric shaft, and the outer pin is mounted by a rolling bearing. If it is supported rotatably and the eccentric movement of the curved plate is guided on the outer peripheral side by this outer pin, the rotation of the motor is transmitted smoothly and efficiently with a large reduction ratio as the rotational movement of the drive shaft. That.
  • An in-wheel motor built-in wheel bearing device is an in-wheel motor built-in wheel bearing device in which a wheel bearing, a reducer, and a motor are arranged coaxially with respect to a central axis of a wheel, An outer member in which the wheel bearing is attached to the casing of the speed reducer on the outer periphery, a double row outer rolling surface is integrally formed on the inner periphery, and a wheel mounting flange for attaching the wheel to one end And at least one inner ring press-fitted into the small-diameter step portion of the hub ring, and the outer circumferential rolling of the double row on the outer periphery.
  • An inner member in which a double-row inner rolling surface facing the surface is formed, and a double-row rolling element housed so as to be freely rollable between both rolling surfaces of the inner member and the outer member; An annular space formed between the outer member and the inner member; And a groove mounted on the outer periphery of the speed reducer casing, so that the outer peripheral surface is protected from rain or muddy water on the speed reducer casing while the vehicle is running.
  • An apparatus can be provided.
  • FIG. 1 is a longitudinal sectional view showing an embodiment of an in-wheel motor-equipped wheel bearing device according to the present invention. It is a principal part enlarged view which shows the wheel bearing part of FIG. (A) is an enlarged view of the main part showing the outer seal part of FIG. 2, (b) is an enlarged view of the main part showing the casing part of the reducer of FIG. 1, and (c) is the motor of FIG. It is a principal part enlarged view which shows a casing part. It is a principal part enlarged view which shows 2nd Embodiment of the bearing apparatus for in-wheel type motor built-in wheels which concerns on this invention.
  • An in-wheel type motor-equipped wheel bearing device in which a wheel bearing, a reducer, and a motor are arranged coaxially with respect to a central axis of the wheel, wherein the wheel bearing is attached to a casing of the reducer on an outer periphery.
  • a vehicle body mounting flange integrally formed, an outer member in which a double row outer rolling surface is integrally formed on the inner periphery, and a wheel mounting flange for mounting the wheel on one end portion.
  • a hub wheel having an inner rolling surface facing one of the outer rolling surfaces of the double row on the outer periphery, a small-diameter step portion extending in the axial direction from the inner rolling surface, and a small-diameter step portion of the hub ring
  • An inner member formed of an inner ring that is press-fitted into the inner ring and has an inner rolling surface facing the other of the outer rolling surfaces of the double row on the outer periphery, and between the rolling surfaces of the inner member and the outer member.
  • a double row rolling element housed in a freely rolling manner, and the outer member and the inner side A seal mounted on an outer side opening of an annular space formed between the material and the outer periphery of each outer side end of each of the reduction gear casing, the motor casing, and the outer member.
  • a concave groove is formed.
  • FIG. 1 is a longitudinal sectional view showing a first embodiment of a wheel bearing device with a built-in in-wheel motor according to the present invention
  • FIG. 2 is an enlarged view of a main part showing a wheel bearing portion of FIG. 2A is an enlarged view of the main part showing the outer seal part of FIG. 2
  • FIG. 2B is an enlarged view of the main part showing the casing part of the reduction gear of FIG. 1
  • FIG. It is a principal part enlarged view which shows a part.
  • the side closer to the outer side of the vehicle when assembled to the vehicle is referred to as the outer side (left side in FIG. 1), and the side closer to the center is referred to as the inner side (right side in FIG. 1).
  • This in-wheel type motor-equipped wheel bearing device includes a wheel bearing 1 that rotatably supports a wheel (not shown), a motor 2 as a rotational drive source, and a motor that decelerates the rotation of the motor 2 to a hub.
  • the speed reducer 3 for transmission is arranged on the central axis O of the wheel.
  • the motor 2 is composed of a radial gap type motor in which a radial gap is provided between a stator 5 fixed to a cylindrical motor casing 4 and a rotor 7 attached to an output shaft 6.
  • the output shaft 6 is rotatably supported with respect to the motor casing 4 by rolling bearings 8 and 8 including a pair of deep groove ball bearings.
  • the opening on the inner side of the motor casing 4 is closed with a cap 9.
  • the speed reducer 3 is a cycloid speed reducer, and is attached to an input shaft 11 having an eccentric shaft 10, a plurality of outer pins 13 passed between the speed reducer casing 12 and the motor casing 4, and a drive shaft 14.
  • These curved plates 18 and 19 are formed in a wavy trochoid curve having a gentle outer shape, and are mounted on the eccentric shaft 10.
  • the outer pin 13 is rotatably supported by rolling bearings 20 and 20 including a pair of needle roller bearings, and the eccentric motion of the curved plates 18 and 19 is guided on the outer peripheral side by the outer pin 13.
  • the input shaft 11 is coupled to the output shaft 6 of the motor 2 via a spline (or serration) 11a and is integrally rotated.
  • a spline (or serration) 11a When the output shaft 6 of the motor 2 rotates, the eccentric shaft 10 attached to the input shaft 11 that rotates integrally therewith rotates, and the curved plates 18 and 19 that engage with the eccentric shaft 10 perform eccentric motion.
  • the rotation of the rotor 7 is smoothly and efficiently transmitted as a rotational movement of the drive shaft 14 with a large reduction ratio.
  • the two curved plates 18 and 19 are mounted on the eccentric shaft 10 of the input shaft 11 with a phase difference of 180 ° so that the eccentric motion is canceled out.
  • the curved plates 18 and 19 are disposed on both sides of the eccentric shaft 10.
  • Counterweights 21 and 21 that are eccentric in the direction opposite to the eccentric direction of the eccentric shaft 10 are mounted so as to cancel the vibration caused by the eccentric movement of the eccentric shaft 10.
  • the input shaft 11 is rotatably supported by a rolling bearing 22 formed of a deep groove ball bearing with respect to a drive shaft 14 described later.
  • the wheel bearing 1 is referred to as a third generation for driving wheels, and as shown in an enlarged view in FIG. 2, an inner member 25 including a hub wheel 23 and an inner ring 24 press-fitted into the hub wheel 23,
  • the inner member 25 is provided with an outer member 27 which is externally inserted through double-row rolling elements (balls) 26 and 26.
  • the hub wheel 23 integrally has a wheel mounting flange 28 for mounting a wheel (not shown) at an end portion on the outer side, one (outer side) inner rolling surface 23a on the outer periphery, and this inner rolling.
  • a small diameter step portion 23b extending in the axial direction from the surface 23a is formed, and a serration (or spline) 23c for torque transmission is formed on the inner periphery.
  • the inner ring 24 is formed with the other (inner side) inner rolling surface 24a on the outer periphery, and is press-fitted into the small-diameter step portion 23b of the hub ring 23 through a predetermined scissors.
  • hub bolts 28 a are implanted at equidistant positions in the circumferential direction of the wheel mounting flanges 28.
  • the hub wheel 23 is formed of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and includes an inner rolling surface 23a and an inner side of a wheel mounting flange 28 serving as a seal land portion of a seal 34 described later.
  • the surface is hardened in the range of 58 to 64 HRC by induction hardening from the base portion 28b to the small diameter step portion 23b.
  • the inner ring 24 and the rolling element 26 are made of high carbon chrome steel such as SUJ2, and are hardened in the range of 58 to 64 HRC up to the core portion by quenching.
  • the outer member 27 integrally has a vehicle body mounting flange 27b attached to the reduction gear casing 12 via a fixing bolt 12a on the outer periphery, and a plurality of outer members 27 facing the inner rolling surfaces 23a, 24a of the inner member 25 on the inner periphery.
  • the outer rolling surfaces 27a, 27a of the rows are integrally formed. Between these rolling surfaces 27a, 23a and 27a, 24a, double row rolling elements 26, 26 are accommodated via a cage 29 so as to be freely rollable.
  • the outer member 27 is formed of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and at least the double row outer rolling surfaces 27a and 27a are hardened in the range of 58 to 64HRC by induction hardening. Has been processed.
  • the drive shaft 14 constituting the speed reducer 3 includes a flange portion 30 to which the inner pin 15 is attached, a cylindrical shoulder portion 31 extending in the axial direction from the flange portion 30, and a shaft extending in the axial direction from the shoulder portion 31.
  • the part 32 is integrally formed (see FIG. 1).
  • a serration (or spline) 32a that meshes with the serration 23c of the hub wheel 23 and an external thread 32b are formed at the end of the outer periphery of the shaft portion 32.
  • the drive shaft 14 is fitted into the hub wheel 23 until the shoulder 31 abuts the end surface of the inner ring 24, and is tightened with a predetermined tightening torque by the fixing nut 33 screwed to the male screw 32b.
  • the hub wheel 23 is coupled in the axial direction so that torque can be transmitted.
  • a seal 34 is attached to an opening on the outer side of the annular space formed between the outer member 27 and the inner member 25, and leakage of the lubricating grease sealed inside the bearing to the outside and from the outside
  • an oil seal 35 that is in sliding contact with the outer periphery of the drive shaft 14 is attached to the opening on the inner side, and the lubricating grease enclosed in the bearing is exposed to the outside. And leakage of lubricating oil and contaminants from the reduction gear 3 side is prevented.
  • the seal 34 is an integrated seal composed of a core metal 36 fitted in the outer member 27 and a seal member 37 joined to the core metal 36. It is configured.
  • the core metal 36 is formed by press working from a steel plate having rust prevention ability such as an austenitic stainless steel plate (JIS standard SUS304 type) or a rust-proof cold rolled steel plate (JIS standard SPCC type).
  • a cylindrical portion 36a that is press-fitted into the inner periphery of the outer side end portion of the outer member 27 via a predetermined shimiro and an inner diameter portion 36b that is bent and extends radially inward from the cylindrical portion 36a are integrally formed. ing.
  • the seal member 37 is made of synthetic rubber such as NBR (acrylonitrile-butadiene rubber) and is integrally joined to the cored bar 36 by vulcanization adhesion.
  • the seal member 37 includes a side lip 37a extending obliquely outward in the radial direction, a dust lip 37b extending obliquely outward in the radial direction on the inner diameter side of the side lip 37a, and a bearing inner side (inner side). ) And a grease lip 37c extending in an inclined manner and a covering portion 37d that covers the exposed surface of the cored bar 36.
  • the covering portion 37d is formed from the inner diameter portion 36b of the cored bar 36 to the end portion of the cylindrical portion 36a, and is set to be slightly larger in diameter than the outer diameter of the cylindrical portion 36a. It is press-fitted into the inner periphery of the end of the Thereby, the airtightness of the seal 34 and the outer member 27 can be improved.
  • a base portion 28b on the inner side of the wheel mounting flange 28 is formed in a curved surface having an arc-shaped cross section, and a side lip 37a and a dust lip 37b are slidably contacted with the base portion 28b with a predetermined axial squeeze, and a grease lip 37c is predetermined.
  • the material of the seal member 37 is excellent in heat resistance and chemical resistance, such as HNBR (hydrogenated acrylonitrile butadiene rubber), EPDM (ethylene propylene rubber), etc., which are excellent in heat resistance. Examples thereof include ACM (polyacrylic rubber), FKM (fluororubber), and silicon rubber.
  • an annular groove 38 is formed on the outer periphery of the outer end of the outer member 27.
  • the concave groove 38 may be formed over the entire circumference. However, if it is formed at least in the range of 180 ° on the side opposite to the road surface, rainwater and muddy water that has traveled on the outer circumferential surface of the outer member 27 are formed. It is discharged downward along the concave groove 38.
  • wheel bearing comprised by the double row angular contact ball bearing which used the ball for the rolling element 26 was illustrated here, it was not restricted to this but what was comprised by the double row tapered roller bearing using a tapered roller It may be.
  • FIG. 3B is an enlarged view of a main part showing the reduction gear casing 12 of the reduction gear 3 of FIG.
  • the reduction gear casing 12 is in contact with an inner side surface of the vehicle body mounting flange 27b of the outer member 27 via an elastic member 39 such as an O-ring, and an annular concave groove 40 is formed on the outer periphery.
  • the concave groove 40 can prevent rainwater or muddy water from flowing to the outer member 27 along the outer peripheral surface of the speed reducer casing 12, and can further improve the sealing performance.
  • groove 40 may be formed over a perimeter, if it is formed in the range of 180 degrees at least on the anti-road surface side, the rainwater and muddy water which were transmitted along the outer peripheral surface of the reduction gear casing 12 will be sufficient as it. It is discharged downward along the concave groove 40. Further, by forming a plurality of concave grooves 40 instead of a single one, it is possible to prevent rainwater and muddy water from flowing to the outer member 27 along the outer peripheral surface of the speed reducer casing 12, and to further improve the sealing performance. Improvements can be made.
  • FIG. 3C is an enlarged view of a main part showing the motor casing 4 of the motor 2 of FIG.
  • a cylindrical cover 41 is attached via an elastic member 42 such as an O-ring so as to cover the outer periphery of the motor casing 4, and an annular concave groove 43 is formed on the outer periphery.
  • This concave groove 43 can prevent rainwater and muddy water from flowing through the outer peripheral surface of the cover 41 to the speed reducer casing 12 and the outer member 27, and can further improve the sealing performance.
  • the concave groove 43 may be formed over the entire circumference, but if it is formed at least in the range of 180 ° on the side opposite to the road surface, rainwater and muddy water that has traveled along the outer peripheral surface of the cover 41 are formed in the concave groove 43. It accumulates in the groove 43 and is discharged downward. Further, the groove 43 may be formed in a plural number instead of a single one.
  • FIG. 4 is an enlarged view of a main part showing a second embodiment of a wheel bearing device with a built-in in-wheel motor according to the present invention
  • FIG. 5 is an enlarged view of a main part showing a seal part of the wheel bearing of FIG. is there. Note that this embodiment is basically different from the above-described embodiment only in the configuration of the bearing portion, and other detailed explanations are given by attaching the same reference numerals to the same parts or parts having the same function. Omitted.
  • the wheel bearing 44 is referred to as a third generation for the drive wheel, and includes an inner member 46 including a hub wheel 45 and an inner ring 24 press-fitted into the hub wheel 45, and a double row of rolling on the inner member 46. And an outer member 47 inserted through the moving bodies 26, 26.
  • the hub wheel 45 integrally has a wheel mounting flange 28 at an end portion on the outer side, one (outer side) inner rolling surface 45a on the outer periphery, and a small diameter step portion extending in the axial direction from the inner rolling surface 45a.
  • 23b is formed, and a serration (or spline) 23c for torque transmission is formed on the inner periphery.
  • the inner ring 24 is formed with the other (inner side) inner rolling surface 24a on the outer periphery, and is press-fitted into the small-diameter step portion 23b of the hub ring 23 through a predetermined scissors.
  • the hub wheel 45 is formed of medium and high carbon steel containing carbon of 0.40 to 0.80 wt% such as S53C, and includes an inner rolling surface 45a and a base portion on the inner side of the wheel mounting flange 28 which becomes a seal land portion of the seal 34.
  • the surface is hardened in the range of 58 to 64 HRC by induction hardening from 28b to the small diameter step portion 23b.
  • the outer member 47 integrally has a vehicle body mounting flange 27b attached to the speed reducer casing 12 via the fixing bolt 12a on the outer periphery, and a plurality of outer members 47 facing the inner rolling surfaces 45a and 24a of the inner member 46 on the inner periphery.
  • the outer rolling surfaces 47a and 27a of the row are integrally formed. Between these rolling surfaces 47a, 45a and 27a, 24a, double-row rolling elements 26, 26 are accommodated via rollers 48, 29 so as to roll freely.
  • the outer member 47 is made of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and at least the double row outer rolling surfaces 47a and 27a are hardened in the range of 58 to 64HRC by induction hardening. Has been processed.
  • the pitch circle diameter PCDo of the outer side rolling elements 26 rows is set larger than the pitch circle diameter PCDi of the inner side rolling elements 26 rows, and the outer side rolling elements 26 rows.
  • the outer rolling element 26 row rolling element due to the difference in pitch circle diameters PCDo and PCDi, the outer rolling element 26 row rolling element.
  • the number Zo is set to be larger than the number of rolling elements Zi of the inner-side rolling elements 26 row (Zo> Zi).
  • the outer side rolling element 26 and the inner side rolling element 26 are exemplified as having the same size.
  • the present invention is not limited to this, and the outer side rolling element 26 row has a rolling element diameter do that is the inner side rolling element 26. It may be set to a smaller diameter (do ⁇ di) than the rolling element diameter di of the 26 rows of moving bodies. Thereby, the expansion of the outer diameter of the outer member 47 can be suppressed, and light weight and compactness can be achieved.
  • the inner periphery of the outer end of the outer member 47 extends from the end surface to the vicinity of the position where the seal 34 is fitted.
  • the step 47b is formed with an inner diameter larger than the fitting surface of the seal 34.
  • a step 49 is formed between the inner side base portion 28 b of the wheel mounting flange 28 and the inner side surface 28 c of the wheel mounting flange 28. Then, the stepped portion 47b of the outer member 47 is engaged with the stepped portion 49 through a slight radial clearance, and a substantially L-shaped labyrinth seal 50 is formed.
  • the labyrinth seal 50 can prevent foreign matters such as rainwater and muddy water from entering the sliding contact portion of the seal 34 and improve the sealing performance.
  • FIG. 6 is a longitudinal sectional view showing a third embodiment of the in-wheel type motor-equipped wheel bearing device according to the present invention
  • FIG. 7 is an enlarged view of a main part showing the wheel bearing portion of FIG. Note that this embodiment is basically different from the first embodiment described above only in the configuration of the bearing portion, and other parts and parts having the same parts or parts having the same functions are denoted by the same reference numerals. The detailed explanation is omitted.
  • This in-wheel type motor-equipped wheel bearing device includes a wheel bearing 51 that rotatably supports a wheel (not shown), a motor 2 as a rotation drive source, and a motor that decelerates the rotation of the motor 2 to a hub.
  • the speed reducer 3 for transmission is arranged on the central axis O of the wheel.
  • the motor 2 is composed of a radial gap type motor in which a radial gap is provided between a stator 5 fixed to a cylindrical motor casing 4 and a rotor 7 attached to an output shaft 6.
  • the output shaft 6 is rotatably supported with respect to the motor casing 4 by rolling bearings 8 and 8 including a pair of deep groove ball bearings.
  • the opening on the inner side of the motor casing 4 is closed with a cap 9.
  • the speed reducer 3 is a cycloid speed reducer, and includes an input shaft 11 ′ integrally provided with an eccentric shaft 10 ′, and a plurality of outer pins (not shown) passed between the speed reducer casing 12 and the motor casing 4. And a plurality of inner pins 15 attached to the drive shaft 14 and two curved plates 18 and 19 that are rotatably supported by the pins via rolling bearings 16 and 17 made of cylindrical roller bearings. Yes. These curved plates 18 and 19 are formed into wavy trochoidal curves having a gentle outer shape, and are mounted on the eccentric shaft 10 '.
  • the input shaft 11 ′ is coupled to the output shaft 6 of the motor 2 via a spline (or serration) 11 a and is integrally rotated.
  • the eccentric shaft 10 ′ formed integrally with the input shaft 11 ′ that rotates integrally therewith rotates, and the curved plates 18, 19 that engage with the eccentric shaft 10 ′. Performs an eccentric motion, and the rotation of the rotor 7 is smoothly and efficiently transmitted as a rotational motion of the drive shaft 14 with a large reduction ratio.
  • the two curved plates 18 and 19 are mounted on the eccentric shaft 10 'of the input shaft 11' with a phase difference of 180 degrees so that the eccentric motion is canceled out, and on each side of the eccentric shaft 10 ', each curved plate is mounted.
  • Counterweights 21 and 21 that are eccentric in the direction opposite to the eccentric direction of the eccentric shaft 10 ′ are mounted so as to cancel vibrations caused by the eccentric movements 18 and 19.
  • the input shaft 11 ′ is rotatably supported by a rolling bearing 22 formed of a deep groove ball bearing with respect to a drive shaft 14 described later.
  • the wheel bearing 51 is referred to as a first generation, and as shown in an enlarged view in FIG. 7, an inner member 53 including a hub 52 and a pair of inner rings 24 and 24 press-fitted into the hub 52, and a pair of An outer ring (outer member) 54 is provided on the inner rings 24, 24, which are extrapolated via double-row rolling elements 26, 26.
  • the hub 52 integrally has a wheel mounting flange 28 at an end portion on the outer side, a small diameter step portion 52b extending in the axial direction from the wheel mounting flange 28 is formed, and a serration (or spline) for torque transmission on the inner periphery. 23c is formed.
  • the pair of inner rings 24, 24 are press-fitted into the small-diameter step portion 52b of the hub 52 through a predetermined squeeze.
  • the hub 52 is made of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and 58 to 58 by induction quenching from the shoulder 52a where the inner ring 24 on the outer side abuts to the small diameter step 52b.
  • the surface is hardened in the range of 64 HRC.
  • the outer ring 54 is made of high carbon chrome steel such as SUJ2, and is hardened in the range of 58 to 64 HRC to the core part by quenching. Then, it is press-fitted into the knuckle 55 via a predetermined squeeze and is positioned and fixed in the axial direction via a retaining ring 56.
  • the knuckle 55 has an attachment flange 55a integrally attached to the reduction gear casing 12 via a fixing bolt 12a on the outer periphery.
  • Seals 57 and 58 are attached to both end openings of an annular space formed between the outer ring 54 and the pair of inner rings 24 and 24, and leakage of lubricating grease sealed inside the bearing and rainwater and dust from the outside. Or the like, or lubricating oil, contamination and the like from the inside of the bearing are prevented from entering from the reduction gear 3 side.
  • an annular groove 59 is formed on the outer periphery of the outer end of the knuckle 55.
  • the concave groove 59 described above may be formed over the entire circumference, but may be formed at least in a range of 180 ° on the opposite road surface side.
  • the wheel bearing device with a built-in in-wheel type motor is a combination of a wheel bearing, a speed reducer, and a motor, and the wheel bearing is an inner member serving as a rotating member and an outer member serving as a stationary member.
  • the present invention can be applied to a first generation to a third generation structure in which a seal is attached to an opening on the outer side of an annular space formed between the members.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Transportation (AREA)
  • Rolling Contact Bearings (AREA)
  • Arrangement Or Mounting Of Propulsion Units For Vehicles (AREA)
  • Sealing Of Bearings (AREA)

Abstract

L'invention concerne un dispositif à roulement de roue ayant un moteur-roue incorporé, qui est en mesure d'améliorer la performance d'étanchéité dans un véhicule électrique à des fins d'amélioration de la durabilité. L'invention concerne de manière spécifique un dispositif à roulement de roue ayant un moteur-roue incorporé, comportant un roulement de roue (1), un engrenage de réduction (3), et un moteur (2) montés sur le même arbre sous la forme de l'arbre central d'une roue, le roulement de roue (1) comportant : un élément extérieur (27) qui est fixé à un carter d'engrenage de réduction (12), et sur la périphérie intérieure duquel sont formées une pluralité de rangées de surfaces de roulement extérieures (27a) ; un élément intérieur (25) qui est constitué d'une roue à moyeu (23) qui a une bride de montage de roue (28) au niveau d'une section d'extrémité, et sur la périphérie extérieure de laquelle sont formées une surface de roulement intérieure (23a) et une section à gradin de petit diamètre (23b) s'étendant dans le sens axial depuis la surface de roulement intérieure (23a), et une roue intérieure (24) qui est comprimée dans la section à gradin de petit diamètre (23b), et sur la périphérie extérieure de laquelle est formée une surface de roulement intérieure (24a) ; une pluralité de rangées d'éléments de roulement (26) logées entre les deux surfaces de roulement ; et un joint d'étanchéité (34) attaché du côté extérieur de l'élément extérieur (27), des rainures évidées (40, 43, 38) étant formées sur la périphérie extérieure du carter d'engrenage de réduction (12), d'un carter de moteur (41), et de l'élément extérieur (27).
PCT/JP2011/056417 2010-03-17 2011-03-17 Dispositif à roulement de roue ayant un moteur-roue incorporé WO2011115219A1 (fr)

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Cited By (5)

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Publication number Priority date Publication date Assignee Title
WO2015137068A1 (fr) * 2014-03-10 2015-09-17 Ntn株式会社 Dispositif d'entrainement commande de moteur-roue
US9384793B2 (en) 2013-03-15 2016-07-05 Seagate Technology Llc Dynamic granule-based intermediate storage
US9588887B2 (en) 2013-03-15 2017-03-07 Seagate Technology Llc Staging sorted data in intermediate storage
CN109689396A (zh) * 2016-09-12 2019-04-26 Ntn株式会社 车轮用轴承装置
EP3807977A4 (fr) * 2018-06-15 2022-06-29 Indigo Technologies, Inc. Moteur à flux axial étanche à refroidissement intégré

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KR101862582B1 (ko) * 2017-02-24 2018-05-30 현대위아(주) 구동모터 일체형 액슬 어셈블리

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WO2009078174A1 (fr) * 2007-12-19 2009-06-25 Ntn Corporation Dispositif de palier pour roue
WO2009113456A1 (fr) * 2008-03-11 2009-09-17 Ntn株式会社 Dispositif d'entraînement de moteur dans la roue
WO2010013439A1 (fr) * 2008-07-30 2010-02-04 Ntn株式会社 Roulement de roue

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Publication number Priority date Publication date Assignee Title
WO2009078174A1 (fr) * 2007-12-19 2009-06-25 Ntn Corporation Dispositif de palier pour roue
WO2009113456A1 (fr) * 2008-03-11 2009-09-17 Ntn株式会社 Dispositif d'entraînement de moteur dans la roue
WO2010013439A1 (fr) * 2008-07-30 2010-02-04 Ntn株式会社 Roulement de roue

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9384793B2 (en) 2013-03-15 2016-07-05 Seagate Technology Llc Dynamic granule-based intermediate storage
US9588887B2 (en) 2013-03-15 2017-03-07 Seagate Technology Llc Staging sorted data in intermediate storage
US9588886B2 (en) 2013-03-15 2017-03-07 Seagate Technology Llc Staging sorted data in intermediate storage
US9740406B2 (en) 2013-03-15 2017-08-22 Seagate Technology Llc Dynamic granule-based intermediate storage
WO2015137068A1 (fr) * 2014-03-10 2015-09-17 Ntn株式会社 Dispositif d'entrainement commande de moteur-roue
JP2015169298A (ja) * 2014-03-10 2015-09-28 Ntn株式会社 インホイールモータ駆動装置
CN109689396A (zh) * 2016-09-12 2019-04-26 Ntn株式会社 车轮用轴承装置
CN109689396B (zh) * 2016-09-12 2022-07-29 Ntn株式会社 车轮用轴承装置
EP3807977A4 (fr) * 2018-06-15 2022-06-29 Indigo Technologies, Inc. Moteur à flux axial étanche à refroidissement intégré
US11411450B2 (en) 2018-06-15 2022-08-09 Indigo Technologies, Inc. Sealed axial flux motor with integrated cooling

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