WO2022145958A1 - Système de moteur-roue hexa - Google Patents

Système de moteur-roue hexa Download PDF

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Publication number
WO2022145958A1
WO2022145958A1 PCT/KR2021/020029 KR2021020029W WO2022145958A1 WO 2022145958 A1 WO2022145958 A1 WO 2022145958A1 KR 2021020029 W KR2021020029 W KR 2021020029W WO 2022145958 A1 WO2022145958 A1 WO 2022145958A1
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Prior art keywords
wheel
motor
driving
hexamotor
cooling
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PCT/KR2021/020029
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English (en)
Korean (ko)
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조희덕
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조희덕
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Publication of WO2022145958A1 publication Critical patent/WO2022145958A1/fr

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    • 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
    • B60K17/00Arrangement or mounting of transmissions in vehicles
    • B60K17/04Arrangement or mounting of transmissions in vehicles characterised by arrangement, location, or kind of gearing
    • B60K17/043Transmission unit disposed in on near the vehicle wheel, or between the differential gear unit and the wheel
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B25/00Rims built-up of several main parts ; Locking means for the rim parts
    • B60B25/002Rims split in circumferential direction
    • B60B25/004Rims split in circumferential direction one rim part comprising the wheel disc
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60BVEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
    • B60B27/00Hubs
    • B60B27/0047Hubs characterised by functional integration of other elements
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H1/00Heating, cooling or ventilating [HVAC] devices
    • B60H1/02Heating, cooling or ventilating [HVAC] devices the heat being derived from the propulsion plant
    • B60H1/14Heating, cooling or ventilating [HVAC] devices the heat being derived from the propulsion plant otherwise than from cooling liquid of the plant, e.g. heat from the grease oil, the brakes, the transmission unit
    • B60H1/143Heating, cooling or ventilating [HVAC] devices the heat being derived from the propulsion plant otherwise than from cooling liquid of the plant, e.g. heat from the grease oil, the brakes, the transmission unit the heat being derived from cooling an electric component, e.g. electric motors, electric circuits, fuel cells or batteries
    • 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
    • B60K1/00Arrangement or mounting of electrical propulsion units
    • B60K1/02Arrangement or mounting of electrical propulsion units comprising more than one electric motor
    • 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
    • B60K11/00Arrangement in connection with cooling of propulsion units
    • B60K11/06Arrangement in connection with cooling of propulsion units with air cooling
    • 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
    • B60K17/00Arrangement or mounting of transmissions in vehicles
    • B60K17/04Arrangement or mounting of transmissions in vehicles characterised by arrangement, location, or kind of gearing
    • 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
    • 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
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60TVEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
    • B60T13/00Transmitting braking action from initiating means to ultimate brake actuator with power assistance or drive; Brake systems incorporating such transmitting means, e.g. air-pressure brake systems
    • B60T13/74Transmitting braking action from initiating means to ultimate brake actuator with power assistance or drive; Brake systems incorporating such transmitting means, e.g. air-pressure brake systems with electrical assistance or drive
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60TVEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
    • B60T5/00Vehicle modifications to facilitate cooling of brakes
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/003Couplings; Details of shafts
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K7/00Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
    • H02K7/10Structural association with clutches, brakes, gears, pulleys or mechanical starters
    • H02K7/116Structural association with clutches, brakes, gears, pulleys or mechanical starters with gears
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P6/00Arrangements for controlling synchronous motors or other dynamo-electric motors using electronic commutation dependent on the rotor position; Electronic commutators therefor
    • H02P6/14Electronic commutators
    • H02P6/16Circuit arrangements for detecting position
    • H02P6/18Circuit arrangements for detecting position without separate position detecting elements
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P8/00Arrangements for controlling dynamo-electric motors rotating step by step
    • H02P8/14Arrangements for controlling speed or speed and torque
    • 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
    • B60K2007/003Disposition of motor in, or adjacent to, traction wheel with two or more motors driving a single wheel
    • 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
    • B60K2007/0061Disposition of motor in, or adjacent to, traction wheel the motor axle being parallel to the wheel axle
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60TVEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
    • B60T2270/00Further aspects of brake control systems not otherwise provided for
    • B60T2270/60Regenerative braking
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60YINDEXING SCHEME RELATING TO ASPECTS CROSS-CUTTING VEHICLE TECHNOLOGY
    • B60Y2400/00Special features of vehicle units
    • B60Y2400/87Auxiliary drives
    • B60Y2400/89Cooling systems, e.g. fan drives
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K2213/00Specific aspects, not otherwise provided for and not covered by codes H02K2201/00 - H02K2211/00
    • H02K2213/03Machines characterised by numerical values, ranges, mathematical expressions or similar information

Definitions

  • the present invention relates to an in-wheel motor wheel structure in which a motor, which is a power source of a vehicle, is located inside a wheel composed of a tire and a wheel, and specifically, an in-wheel hexamotor in which six driving motors are mounted inside the wheel
  • the air-cooled cooling method is based on the air-cooled cooling method, which accelerates the driving wind by improving the spokes of the wheel to the shape of a blade fan with airfoils and secures a heat exchange passage with a cooling air flow port with cooling fins in the space between the six driving motors.
  • It relates to a hybrid cooling system combined with a phase change material cooling method and a shear vibration insulation system for a wheel to which a hub spring and a rubber damper are applied.
  • electric vehicles have an in-line electric drive system that transmits power generated from an electric motor to the wheels through a transmission shaft and a differential according to a driving method, and an in-wheel (in-wheel) system that mounts the electric motor inside the vehicle wheel.
  • the in-wheel system is divided into an electric drive system, and the in-wheel system is a simple in-wheel system that coexists with the existing suspension system by mounting only the drive motor inside the wheel depending on the implementation method, and the entire braking, steering, and suspension system is installed in the wheel along with the drive motor. It can be roughly classified as an integrated in-wheel system.
  • the in-wheel motor system integrates the driving and braking system within the wheel of a wheel. It removes parts of the power train such as a differential or drive shaft and reduces mechanical loss to improve energy efficiency and increase the driving force for each wheel. It improves driving performance and steering performance by freely changing torque vectoring, motion control, and active differential function control, and includes electric stability control, smart parking assist system, and autonomous driving system ( Implementation of autonomous driving system) is relatively easy.
  • the in-wheel motor system requires miniaturization of parts because various mechanical and electronic parts are mounted in a complex structure in the limited space of the wheel in terms of application in actual industry.
  • Economical cooling method to dissipate loss (input-output) energy such as copper loss of coil, iron loss of core, mechanical loss of bearings and gears, wind loss, etc. Vibration isolation measures should be taken in parallel.
  • the cooling and vibration isolation problem of the in-wheel motor system is different from the in-line electric drive system, which transmits power to each wheel through a transmission shaft and a differential, in which vibration due to road impact is the most severe.
  • the motor is mounted in a narrow space of the location, it is difficult to secure durability, and the cooling water piping in the wheel is difficult, so by adopting an air-cooled sealed structure, copper loss due to winding resistance of the stator coil, hysteresis loss of the rotor permanent magnet, and heat and heat dissipation due to eddy current loss, It is a very difficult task to achieve high efficiency, high performance and durability due to the problems of weight reduction and moisture resistance.
  • the in-wheel motor is located under the suspension, so the wheel weight increases and the motor moves up and down together with the wheels of the vehicle. It increases and the load holding force that the car tire adheres to the road surface while driving is deteriorated and the vibration transmitted to the vehicle body through the spring is amplified, thereby reducing the riding comfort.
  • the planetary gear device drives a ring gear with a large turning radius (R) and mass (M) to have the structural characteristics of synchronously rotating with the wheel drive shaft in the same rotational direction, angular speed and phase as the wheel, so that the tire, the wheel, and the rotor of the in-wheel motor And the ring gear part generates an unbalanced mass or eccentric mass to generate eccentric load, force, and bending moment, resulting in a whirling phenomenon in which the drive shaft deviates from the neutral shaft.
  • R turning radius
  • M mass
  • the present invention provides an outer rotor with a large rotation radius (R) and mass (M) of a conventional in-wheel motor system and an internal or ring gear of a planetary gear device that is a speed reducer We want to provide a configuration that removes the .
  • the step motor that can digitize the motor driving as a pulse input function and can define the driving algorithm simply and clearly is adopted, thereby securing high-output driving power through digital vehicle driving control based on numerical control and multi-motorization.
  • It aims to improve braking quality and ride comfort with multi-stage regenerative braking function of cooperative motor driving method and easy application of artificial intelligence (AI) autonomous driving system.
  • AI artificial intelligence
  • the hub spring that absorbs and dissipates vibrations of tires, wheels and motors and the vibration insulation of rubber dampers between the wheel transmission shaft and the motor enclosure It is intended to provide a front end vibration absorber/damper function that dampens shock and harmonic excitation vibration energy at the front end of the suspension.
  • An object of the present invention is to provide an improved 'in-wheel hexamotor system' compared to the conventional 'in-wheel motor system'.
  • an in-wheel motor vehicle in which a motor serving as a power source is provided inside a wheel of the vehicle, the wheel comprising: a wheel supporting a tire and a vehicle weight and transmitting power; a spoke which is a hub and a disk of the wheel, a rim in contact with a tire, and a connection part; a transmission shaft and a hub bearing supporting the rotational force of the wheel; and a motor enclosure for storing and supporting the transmission shaft and the hub bearing.
  • the motor housing unit includes six driving motors (hexamotors) and driving gears, which are vehicle power sources, and one driven gear externally engaged with the six driving gears.
  • a shoe is mounted and a mounting disk coupled to the transmission shaft inside the wheel hub is provided, and a mounting hole or wheel bolt hole is provided on the edge of the mounting disk, and a wheel bolt or lug nut provides a means for fastening the wheel disk and the wheel and a tooth (tooth, ⁇ ) of the driven gear on the outer peripheral surface of the mounting disk.
  • the six driving gears are arranged in a hexagonal radial shape around the one driven gear, and a total of seven gears are coupled external compound gears.
  • multiple motors by simultaneous driving of 7 gears distribute the required torque in a cooperative driving method for each mode such as start, acceleration, constant speed, deceleration, and stop.
  • the driving vector resultant of the transmission shaft is increased, and the driving gear and the driven gear rotate in opposite directions, respectively, and the driving force of the six driving motors at different rotation angular velocities and phase angles is applied to the transmission shaft through the one driven gear.
  • it provides an in-wheel hexamotor system, characterized in that it is transmitted to the wheel and tire.
  • the spokes connecting the hub of the wheel and the rim in contact with the tire are provided with 10 to 30 per wheel in the shape of a blade fan.
  • the airfoil of the blade fan has a fineness ratio of 2.5 to 3.5, a symmetrical elliptical airfoil of the blade fan. to accelerate the driving wind of the vehicle and improve the air flow, and to concentrate the vector resultant force of lift generated from the airfoil of the blade fan on the origin of the transmission shaft located lower than the center of gravity of the vehicle body. Increases traction (load holding).
  • the sizes of the leading edge and the trailing edge are symmetrical having a leading edge and a trailing edge with a radius of 0.01c to 0.03c of the chord line distance c, which is a straight line connecting the leading edge and the trailing edge.
  • the oval-shaped spokes connect the rim and hub of the wheel, and the angle of attack or elevation ( ⁇ ) at the leading edge is 35 degrees or less from the outside of the wheel in the driving direction, and the direction of the trailing edge is inclined to the inside of the wheel.
  • angle of attack or elevation
  • the six hexa motors (HEXA motor) stored in the motor housing unit display the position of the polar coordinates relative to the origin of the transmission shaft in radians, 0 (or 2 ⁇ )
  • the origin of the six hexamotor rotation shafts is located at ⁇ /3, 2 ⁇ /3, ⁇ , 4 ⁇ /3, and 5 ⁇ /3.
  • the dimensionless shape dimensions of the six hexamotors and the driving gear and the driven gear are the pitch circle diameter of the virtual gear circumscribed with the pitch circles of two adjacent driving gears and inscribed on the inner circumferential surface of the wheel rim.
  • the pitch circle value of the driving gear is 1/ ⁇ 2 (0.7071)
  • the pitch circle value of the driven gear is ⁇ 3 (1.7320)
  • the number of teeth (Z1) of the driving gear is a prime number.
  • the number of teeth (Z2) of the driven gear is 47, which is a prime number, so that the gear ratio (Z1/Z2) generates an infinite number (0.4042). It is possible to increase the life coefficient by preventing the reduction of the pitting resistance of the gear tooth surface by operating the driven gear to mesh at different points.
  • the pitch circle value of the external compound gear train is 1/ ⁇ 2+ ⁇ 3+1/ ⁇ 2 (3.1462)
  • the inner diameter value of the motor housing is (1/ ⁇ 2+ ⁇ 3)/2 (1.2195)
  • the motor The inner diameter value of the motor enclosure housing the (3 ⁇ 3+3/ ⁇ 2)/2 (3.6587), the inner diameter value of the inner peripheral surface of the wheel rim is 3.8867 ⁇ 4.3068, the diameter value of the wheel disk is ⁇ 3 or more
  • the diameter value of the mounting disk is ⁇ 3+2a (a: tooth tip height, addendum), and the outer diameter value of the hub of the motor enclosure housing the transmission shaft is (1/ ⁇ 2+ ⁇ 3)/2(1.2195), the above
  • the size of the bolt diameter (BCD) of the mounting disk is (1/ ⁇ 2+ ⁇ 3)/2(1.2195) or less depending on the number of wheel bolt lug patterns (3, 4, 5, 6, 7, 8).
  • the axis of rotation of the hexamotor may be a hollow shaft.
  • the hollow shaft is a positive sinusoidal (positive sinusoidal)-shaped corrugated pipe, which is a positive sinusoidal shaped corrugated tube that converts a negative value of a sinusoid into a positive value when viewed in cross section.
  • Adopting it as a rotation shaft of the hexamotor The heat conducted from the motor rotor (rotor) is used as the heat exchange channel of the hexamotor rotor that emits heat from the empty space inside the hollow rotating shaft to the outside atmosphere.
  • the six hexamotors employ a step motor with a digital control function as a power source, so that one rotational angle and rotational speed are proportional to the number of input pulses per second, and the position and speed of the rotor for position and speed control.
  • the step motor reduces the possibility of out-of-sync (step-out) by applying a 5-phase step motor that rotates 0.0125 radians (0.72 degrees) per step, increases torque by activating 10 magnetic poles, and torque ripple (torque).
  • the hexamotor that is, the six driving motors are referred to as I, II, and III in pairs, I ( ⁇ and 2 ⁇ positions), II ( ⁇ /3 and 4 ⁇ / 3 position) and III (2 ⁇ /3 and 5 ⁇ /3 positions)
  • a rotational moment is generated by a pair of parallel forces (couple) in opposite directions, but the vehicle starts, accelerates, stops at constant speed, and decelerates.
  • stop mode, start, acceleration and climbing modes that require high torque are full motor operation (I+II+III), and constant speed mode with inertia and frictional force balance is partial motor operation (I+II driving, III non-operating).
  • the deceleration mode of kinetic energy absorption is drive + regenerative braking operation (I+II driving, III regenerative braking), and the stop mode utilizes the stopping torque driving control of the entire motor (I+II+III) stop operation, or is necessary. It is characterized in that the driving force of the vehicle is controlled by a cooperative motor driven method or torque vectoring that controls the six motors as an individual unit by combining driving, idle, regenerative braking, and stationary states. It provides an in-wheel hexamotor system that
  • the mechanical braking device on the outer circumferential surface of the motor housing unit dissipates frictional heat due to compression braking of the brake to the running wind in the gap between the outer circumferential surface of the motor housing and the inner circumferential surface of the rim of the wheel.
  • a brake drum equipped with an air vent (air exhaust) groove, and a mechanical braking drum brake function of a brake shoe and a brake lining are added to the outer peripheral surface of the motor housing to provide an AC induction motor, synchronous It is a mechanical braking function that is used as a service brake for motors, or that assists in the regenerative braking function that converts kinetic energy into electrical energy.
  • Dual (mechanical braking + regenerative braking) or triple (mechanical braking + regenerative braking + stopping torque braking) brake function that combines regenerative braking with braking function to provide service brake, auxiliary brake, emergency brake, and parking brake can be used
  • the driving gear pitch diameter value of the hexamotor is 1/ ⁇ 2 (0.7071)
  • the pitch diameter value of the wheel hub driven gear is ⁇ 3 (1.7320)
  • the excitation frequency ratio r of the wheel part is 0.4082 ((1/ ⁇ 2)/ ⁇ 3)
  • the coupling between the driving gear and the driven gear with one wheel hub it constitutes external compound gear trains, and the backlash, the gap between the gear teeth, and the allowable tolerance
  • a recessed groove having a diameter of 10 mm and a height of 4 mm is formed on the inner peripheral surface of the hub of the motor housing and the peripheral peripheral surface of the hub bearing bracket.
  • Vibration isolation and absorption function can be provided.
  • the diameter value of the hub spring and the rubber damper is ⁇ 2 times (1.4142) as large as ⁇ 2 times (1.4142) of the diameter of the receiving recess groove of 10 mm, and the vibration isolation absorption groove, the hub spring and the rubber damper are combined
  • the method is a tension method that reduces the thickness from ⁇ 2 to less than 1, and after inserting it into a concave groove, relaxes it to restore elasticity.
  • the unsprung mass or unsprung mass is reduced, and the suspended mass or sprung mass Shear vibration that attenuates vibration and shock response at the front end of the suspension with a function to improve load holding, which is the adhesion between the tire and the road surface, suppress pulsation and resonance, and expand the operating bandwidth.
  • the auxiliary suspension function with front end vibration isolation and absorption can provide improved driving and riding comfort.
  • the spokes of the wheel are improved with a blade fan to accelerate the driving wind
  • the motor enclosure including the driving gear, the driven gear, and the motor is transferred to a convection heat transfer path.
  • the double sine wave hollow rotating shaft of the hexamotor is used as a heat exchange passage, and the running wind is injected into the hollow rotating shaft whose surface area is expanded by ⁇ times to convection the heat of the rotor part to the outside and cool it.
  • a heat sink Heat conduction and thermal convection area (A) is enlarged by 360 times (12R*30 pieces) based on the radius of the cooling air flow port (R) with a heat sink), and the gear train, hexamotor, and mechanical brake are driven by the running wind accelerated by the blade fan. And it provides an in-wheel hexamotor system characterized by an air-cooling cooling method for cooling the motor enclosure.
  • a water cooling type in which water, which is a sensible heat refrigerant, is injected into the refrigerant jacket, which is an empty space between the cooling air flow port and the motor containment port.
  • a hybrid cooling method of “air cooling + water cooling” and an “air cooling type + phase change material cooling method” a hybrid cooling method that cools the gear train, hexamotor, mechanical brake, and motor enclosure using running wind and phase change materials such as water or paraffin without external energy input.
  • the 30 cooling air flow ports and the 6 sine wave hollow rotating shafts are cooled by placing an air chamber in the inner space of the enclosure cylinder
  • An active hybrid cooling method capable of heat exchange through an integrated heat system by converging air, but placing a blower, a heat sink and a heat exchange hole outside the enclosure cylinder to focus the automobile air conditioning system and heat exchange port of the chassis (chassis) with a flexible tube
  • the temperature sensor detects it and drives the blower with battery power to cool the hexamotor unit
  • Energy use efficiency can be improved by recycling waste heat from the motor to the automotive air conditioning (Heating, Ventilation, Air Conditioning, HVAC) system through the heat exchange method systematically integrated with the battery cooling system and the power supply cooling system including inverters and converters. .
  • the motor housing unit of the in-wheel hexamotor system includes one housing cylinder for mounting the brake shoe on the outside, six motor housings for storing the hexamotor, which is a vehicle power source, and the hexamotor by running wind.
  • a total of 38 hollow cylinders of 30 cooling air flow ports for cooling the motor and one enclosure hub housing the transmission shaft, hub bearing and shear vibration insulating groove form the enclosure in the shape of a hexagonal grid-type filling structure.
  • the enclosure cylinder and the enclosure hub function as two thin outer faces, the motor containment port and the cooling air flow port are stabilized with a thick core layer with a filler, and the inside of the rear end of the hexamotor of the enclosure cylinder
  • a wiring air chamber is placed in the space, but the power lines and control lines of the 6 hexamotors are wired and connected, and the 6 double sine wave hollow rotating shafts and the running winds of 30 cooling air flow ports are combined to create 36 heat exchange passages (channels)
  • a heat exchange system is formed with a furnace, and one actuator is placed to drive the outer brake shoe of the enclosure cylinder, and a support point of the suspension device is provided with a plurality of upper and lower suspension arms/link grooves on the outer surface, the enclosure cylinder wiring and the air chamber
  • a parabola anchor with full stress is formed in a protruding type to provide a connection or support point with the chassis (undercarriage) and a seating portion of the suspension strut
  • the in-wheel hexamotor system of the present invention integrates six small high-efficiency motors inside the wheel and utilizes them as a power source to directly drive the electric shaft of the wheel, thereby solving problems such as driving output, motor cooling, and vibration resistance that occur in conventional single in-wheel motors. By improving it, it is possible to secure advanced technical characteristics that overcome the limitations of existing in-wheel motors that are directly exposed to various types of road surfaces and external environmental conditions.
  • digital control technology that specifies the driving method of the hexamotor as a variable in the number of input pulses per second (x), and the vehicle behavior (y) in minute units of radians, a dimensionless number (f) ) to simplify the algorithm of car operation regardless of vehicle type or tire size with a differential equation that analyzes the local movement of the system by providing It can be used as a base technology that can accelerate its commercialization.
  • FIG. 1 is an exploded perspective view of an in-wheel hexamotor system
  • FIG. 2 is a cross-sectional view of an in-wheel hexamotor arrangement.
  • FIG. 3 is a front view of an external compound gear train (7 gears).
  • FIG. 4 is a flowchart illustrating a cooperative motor driving method control procedure.
  • 5 is a cross-sectional view of the transmission shaft and the driven gear coupling.
  • FIG. 6 is a side cross-sectional view of the transmission shaft and the driven gear coupling.
  • FIG. 8 is a configuration diagram of a five-phase step motor and a double sine wave hollow rotating shaft.
  • FIG. 9 is a diagram showing the arrangement and shape of the drum brake.
  • 10 is a shape diagram of a blade fan.
  • FIG. 11 is a layout view of a cooling air flow port.
  • FIG. 12 is a shape diagram of a hybrid cooling system.
  • FIG. 13 is a conceptual diagram of a shear vibration isolation method.
  • 15 is a schematic diagram of a motor enclosure.
  • 16 is an outer cross-sectional view of the motor enclosure.
  • 17 is a plan view of a parabolic anchor.
  • an aspect of the present invention includes: a transmission shaft for transmitting power, a wheel part comprising a wheel and a tire, a plurality of small motors and driving gears as power sources; a motor enclosure for accommodating the motor and the transmission shaft; and a driven gear, a mounting disk, and an electric shaft receiving power from a plurality of motor driving gears.
  • the small motor is preferably an even number that can use a couple force (couple) that generates a rotation moment rather than an odd number in terms of efficiency of power transmission, and the number of motors is a minimum perfect number, and an n-dimensional Euclidean space (Euclidean) Space), it is desirable to form a power source with a hexagonal lattice type hexamotor system that connects '6' motors with k(n), the number of kissing numbers (spherical contact number) k(n), around the transmission shaft. do.
  • the hexamotor is mounted by locating the drive shafts of individual motors at the vertices B and C by taking as vertex A.
  • the hexa motor refers to six motors that are driving motors.
  • a specific hexamotor that is, the coordinate values of the center of the six driving motor rotation shafts are polar coordinates (r, ⁇ ) when the center of the transmission shaft is the origin of the polar coordinates (r, ⁇ ) as shown in FIG. 18 . It can be expressed, and the position of the center of the rotation shaft of the six driving motors becomes 0 (or 2 ⁇ ), ⁇ /3, 2 ⁇ /3, ⁇ , 4 ⁇ /3, 5 ⁇ /3 when r is kept constant and ⁇ is expressed in radians. , it is preferable to store six driving motors in the motor housing unit corresponding to these positions, and to adopt a spur gear that does not generate an axial load as the driving gear of the motor and the driven gear on the transmission shaft.
  • Gear sizes are expressed as relative sizes using dimensionless geometric dimensions.
  • the standard dimension is set as a unit diameter, and this unit diameter circumscribes the pitch circle of two adjacent driving gears as shown in FIG. 18 when referring to the pitch circle 230 where the line connecting the centers of the gears meets,
  • the pitch circle diameter of the virtual gear 290 inscribed on the inner circumferential surface of the wheel rim is set as a unit diameter.
  • the pitch circle diameter of the driving gear is 1/ ⁇ 2 (0.7071)
  • the pitch circle diameter of the driven gear is ⁇ 3 (0.7071). It has a speed transmission ratio of 0.4 ((1/ ⁇ 2)/ ⁇ 3).
  • the spoke connecting the wheel rim and the hub is improved to a blade shape having an airfoil ( ⁇ ), thereby accelerating the driving wind
  • the motor and gear are cooled, and the mounting disk is placed at the position where the wheel hub disk is connected, and a mounting hole (wheel bolt hole) passing through the disk and teeth of the driven gear on the outer peripheral surface of the mounting disk are provided, but It constitutes a reduction type external compound gear train that is larger than the pitch circle diameter.
  • the present invention relates to a type and a driving method of the motor, which is a power source of a vehicle, wherein the hexamotor can be applied to a commercially available AC or DC motor method, but the rotation angle and rotation speed are dependent on the number of input pulses per second. It is proportional, and there is no need for a sensor that detects the position of the rotor for position and speed control, an encoder or resolver that detects speed, or feedback configuration.
  • a method of employing a digitally controlled stepper motor is provided.
  • the step motor controls the vehicle with digital behavior and numerical control in micro-radian units, and is directly connected to the transmission shaft to eliminate ultra-low-speed synchronous rotation and brushes, thereby providing high reliability and starting, accelerating, constant speed, deceleration, and stopping of a large number of motors.
  • Torque vectoring which distributes the required torque by cooperative driving method for each mode, such as torque vectoring, and cooperative regenerative braking to prevent step-out of step motors, smooth deceleration and minimize sudden braking shock to improve braking quality and ride comfort, energy It provides an optimization technique for its use.
  • the vibration transmission rate is smaller than 1.
  • the driving gear is set to 1/ ⁇ 2 and the driven gear is set to ⁇ 3 size and used for resonance prevention and vibration isolation.
  • the motor is a vibration absorber that absorbs and dissipates the vibrations of wheels, wheels and motors.
  • a drum brake function is added to the gap between the outer peripheral surface of the motor housing and the inner peripheral surface of the wheel rim to be used as a service brake for the mechanical braking function, or Double (mechanical brake + regenerative braking) or triple (mechanical brake + It provides the braking function of regenerative power braking + static torque braking).
  • the spokes of the wheel are improved to a blade fan shape having an airfoil, and a profile cross-section having a cooling fin in the motor housing part
  • a phase change material such as paraffin with high latent heat and thermal conductivity
  • the motor housing portion of the in-wheel hexamotor accommodates or stores the motor, the transmission shaft, the driving gear and the driven gear, the cooling air flow port, the cooling water or phase change material storage space, the vibration shock insulation part, etc. , a honeycomb hexagonal lattice filling structure and full stress beam ( Provided is an automobile chassis connection having a parabolic geometry that is a fully stressed beam.
  • Example 1 In-wheel hexamotor and cooperative motor driving method
  • FIG. 1 is an exploded perspective view of the in-wheel hexamotor system
  • FIG. 3 is a front view of an external compound gear train (7 gears)
  • FIG. 4 is a flowchart illustrating a cooperative motor driving method control procedure.
  • the hexamotor 100 is equal in size to an odd number in terms of efficiency of power transmission, and a pair of parallel forces in opposite directions generates a rotational moment by two forces of action and reaction. An even number of available dogs is preferred.
  • the number of even multiple motors is a positive integer that can be expressed as the sum of positive divisors excluding itself [2 ⁇ (n-1)(2 ⁇ n-1)], and is the minimum perfect number.
  • '6' motors with the number of kissing (or spherical contact, kissing number) k(n), which is the number of non-overlapping unit circles, are horizontally connected to the origin O(0, 0) of the wheel and the transmission shaft.
  • k(n) which is the number of non-overlapping unit circles
  • the individual motor rotation shafts 120 at the vertices B and C have origin coordinate values of 0 or 2 ⁇ , ⁇ /3, 2 ⁇ /3, ⁇ , 4 ⁇ /3, and 5 ⁇ /3.
  • the driving method of the hexamotor 100 is preferably a cooperative motor driven (140) method corresponding to the situation for each start, acceleration, constant speed, deceleration, and stop mode of the vehicle, and for this, a pairing force effect is expressed.
  • a pair is formed between the hexamotors 100 in a symmetrical direction, for example, ⁇ and 2 ⁇ positions around the origin 390 of the transmission shaft, and I ( ⁇ -2 ⁇ ), II ( ⁇ /3-4 ⁇ /3), III (2 ⁇ ) It is preferable to drive in a way that combines the pairs of /3-5 ⁇ /3).
  • the cooperative motor driving method 140 transmits the output torque of the entire motor to the electric shaft 370 (see FIG. 6) in the start and acceleration modes, and regeneratively brakes some motors in the deceleration and stop modes (580). mode to store kinetic energy as electrical energy in the battery through the brake function and energy regeneration, while preventing stalling of induction and synchronous motors that may occur in sudden deceleration or braking situations, and preventing step-out and slowing of the step motor 170
  • the multipurpose effect of transitioning to one deceleration-soft braking-stop mode can be achieved.
  • the hexamotor control unit 840 (not shown) including a driver and a controller is a vehicle driving, speed and steering system through data calculations such as various sensors of the vehicle or an accelerator pedal or a brake pedal.
  • Electronic Control Unit (ECU) that controls AI) technology, etc. to operate in conjunction with an autonomous driving system (ADS), which can drive a vehicle on its own without driver's manipulation, etc. same as
  • the operation of the electric vehicle to which the in-wheel hexamotor system 10 of the present invention is applied is driven by the hexamotor control unit 840 interlocked with an electronic control unit (ECU), a battery management system (BMS), an autonomous driving system (ADS), etc.
  • ECU electronice control unit
  • BMS battery management system
  • ADS autonomous driving system
  • the hexamotor control unit 840 determines the target speed for each driving mode of the vehicle (S104) and, if the speed is less than the prescribed speed, gives a feedback to increase the number of applied pulses, or determines the inertial force and friction force of the vehicle (S105) ), in the case of constant speed or constant speed operation (S106), the constant speed operation is maintained, and when the inertial force is greater than the friction force, such as on a downhill road (S107), it is decided to switch to the regenerative power generation braking mode (S108), and 6 hexadecimal units per wheel
  • the number of regenerative generator motors of the motor is determined (S109) to charge the battery, but the feedback process is repeated by comparing the braking target value and the speed difference (S110), and the number of regenerative generator motors is adjusted (S109).
  • the hexamotor control unit 840 increases the number of applied pulses (S112) to accelerate the vehicle and determine the driving target speed ( S113), a feedback process of additionally increasing the applied pulse is provided, and when the target speed is reached, the driving torque of the hexamotor 100 is distributed for each two-wheel drive or four-wheel drive (S114).
  • a total of 12 (6*2) two-wheel drive and a total of 24 (6*4) multi-motors are grouped or Control by individual motor unit and calculate the number of applied pulses according to the operation mode such as start, acceleration, constant speed, deceleration, and stop mode to drive the hexamotor (S103), thereby simplifying and digitizing the vehicle operation algorithm. It improves the reliability of the electric vehicle power train by increasing the availability (Uptime/(Uptime + Downtime)) of the battery management system (BMS) and autonomous driving system.
  • BMS battery management system
  • the driving method is a control method that can solve the disadvantages of the conventional in-line motor and the existing in-wheel motor, which supply driving power with a single motor. Alternatively, it improves fuel efficiency by switching the rear wheel to two-wheel drive mode, and by combining the cooperative motor driving method 140 between four-wheel drive, two-wheel drive and hexamotor to minimize shock and vibration generated by switching the regenerative braking (580) mode. It is a control method that provides smooth braking performance and can increase energy use efficiency by controlling individual motors by controlling voltage and current.
  • the characteristic of the cooperative motor driving method 140 is a brake lock prevention system (ABS, Anti -lock Braking System), TCS (Traction Control System) that decelerates the wheel to prevent the wheel from spinning when the tire 300 loses traction and spins idle during acceleration, body posture control device that provides stability of body movement and steering (VDC, Vehicle Dynamic Control), Downhill Brake Control (DBC) that maintains a constant speed when driving down a steep slope, and HAC: Hill start Assist Control) function can be easily implemented.
  • ABS Anti -lock Braking System
  • TCS Traction Control System
  • VDC Vehicle Dynamic Control
  • DDC Downhill Brake Control
  • HAC Hill start Assist Control
  • planetary gear trains which are adopted as reducers of most hybrid and electric vehicles, have one gear that revolves around the gear shaft of the other when a pair of meshing gears rotate.
  • the planetary gear unit As a device, it is composed of a sun gear, a carrier, an internal gear, and a planetary pinion (usually 3 or 4).
  • the planetary gear unit In order to obtain a sufficient reduction ratio necessary for low-speed driving (0-100 km/h) of a vehicle, the planetary gear unit is connected in multiple stages on the same axis, so the structural shape that requires high density integration of many mechanical parts in a narrow space inside the wheel is inevitable. .
  • the in-wheel motor system integrates the driving and braking devices within the wheel, and the motor directly drives the wheels without a separate power transmission device such as a differential, so that independent driving, braking, and steering torques can be distributed to each wheel.
  • the motor is installed in the location where vibration due to road shock is the most severe, and by installing the motor in a narrow space inside the wheel, heat dissipation, light weight, and Moisture resistance problem occurs.
  • the present invention in consideration of the vibration isolation and the narrow wheel 310 internal space problem as described above, it rotates synchronously in the same rotational direction, angular velocity, and phase as the external rotor and wheel, and the rotation radius (R) and mass (M) are large inscribed
  • planet gears using ring gears are not removed from the gear trains component, but six small motors are adopted as power sources, and the gear size is the pitch circle 230 diameter (D) value of two adjacent
  • the external compound gear train 240 is a driven gear 210 on the transmission shaft 370 and the driving gear 200 of the hexamotor 100 to form a gear train in a hexagonal radial shape (FIG. 3), six driving gears (200) directly drives the driven gear 210 and the transmission shaft 370, a speed transmission ratio of 0.4 ((1/ ⁇ 2)/ ⁇ 3), and different rotational directions of clockwise and counterclockwise directions, respectively
  • a speed transmission ratio of 0.4 ((1/ ⁇ 2)/ ⁇ 3)
  • different rotational directions of clockwise and counterclockwise directions respectively
  • the rotation of the driving gear 200 and the driven gear 210 in opposite directions and the rotation at different angular velocities due to the different diameters of the pitch circle 230 and the asynchronous rotation of the phase angles are effective vibrations that can prevent resonance and suppress harmonic amplification.
  • the forcing frequency ( ⁇ f) or driving frequency range is spread widely, and the vibration kinetic energy of the vehicle is converted into frictional heat on the gear tooth surface and dissipated into the atmosphere, thereby damaging the structure of the power transmission system and driving stability of the vehicle. prevent degradation.
  • the vibration absorption and vibration isolation are caused by the unevenness of the curved road surface and the rotational imbalance mass (eccentricity mass, eccentricity mass) of the wheel part 30 including the tire 300. )
  • Characteristics of the preferred embodiment of the in-wheel hexamotor system 10 are cooperative motor driving method or torque vectoring using six small motors in order to solve the problems of the conventional in-wheel motor system, and high voltage and low current
  • the air cooling method 660 utilizing the driving wind 640 is utilized,
  • the heat dissipation characteristic is improved by the hybrid cooling method 690 in which the water cooling type cooling method 670 and the phase change material cooling method 680 are combined.
  • Example 3 the motor cooling method is described in Example 5
  • Example 6 the shock and vibration isolation method is described in Example 6
  • Example 7 the preferred storage method of the hexamotor is described in Example 7.
  • Embodiment 2 relates to a mounting disk 380 coupling the driven gear 210 and the transmission shaft 370 of the wheel hub 350 of the in-wheel hexamotor system 100
  • FIG. 5 is a cross-sectional view of the transmission shaft and the driven gear coupling
  • Figure 6 illustrates a cross-sectional side view of the transmission shaft and the driven gear and the driving gear coupling.
  • the external compound gear train 220 that transmits the driving force of the in-wheel hexamotor 100 to the wheel part 30, preferably two adjacent driving gears are circumscribed and inscribed on the inner circumferential surface of the wheel rim.
  • the pitch circle diameter of the driving gear 200 is 1/ ⁇ 2 (see FIG. 18). 0.7071)
  • the pitch circle diameter of the driven gear 210 is ⁇ 3 (1.73202)
  • the speed transmission ratio is 0.4 ((1/ ⁇ 2)/ ⁇ 3) with a reduction ratio of 1 driven gear 210 and 6 drives
  • a total of seven gears of the gear 200 are coupled in a hexagonal shape. Accordingly, the driving vector resultant force in the direction of the transmission shaft origin 390 is increased by torque vectoring by simultaneous gear driving of 7 gears.
  • the driven gear 210 preferably has a shape integrated with the mounting disk 380 coupled to the transmission shaft 370 , has a mounting hole 810 penetrating the disk, and faces the wheel disk 340 .
  • a fastening means for coupling the wheel 310 with wheel bolts 820 or lug nuts and a wheel hub cap 830 for tightening the transmission shaft 370 and the wheel disk 340 are provided, and a mounting disk is provided.
  • the outer peripheral surface of the driven gear 210 is provided with teeth (tooth, ⁇ ) to form the external compound gear train 220 to which the six driving gears 200 are coupled, the mounting disk 380, the outer peripheral surface and the driven gear
  • the external compound gear train 220 is operated in the cooperative motor driving 140 method of Embodiment 1 corresponding to the situations for each start, acceleration, constant speed, deceleration, and stop mode of the vehicle, and is usually a spur gear.
  • the power transmission efficiency is 98 ⁇ 99.5%, and 0.5 ⁇ 2% of energy is inevitably lost as heat energy. .
  • the technical idea of preventing beat vibration in vibration structures such as automobiles and lowering the vibration transmission rate ratio (T.R.) at the resonance point is a significant vibration insulation measure, the ⁇ 3 pitch circle 230 diameter value of the driven gear 210 and the driving gear 200
  • the rotation directions of the wheel part 20 and the motor part 10 are different from each other in clockwise and counterclockwise directions, and a speed transmission ratio of 0.4 ((1/ ⁇ ) 2)/ ⁇ 3) together with the gear ratio of 7 gears, when the external compound gear train 220 of 7 gears is configured, the backlash 260, which is the gap between the tooth surfaces, and the driving disturbance of the wheel part 30 due to the dimensional tolerance
  • a method of converting phosphorus shock and vibration energy into frictional heat on the gear tooth surface and dissipating it into the running wind 640 improves the vibration dampening and cooling effect, and the detailed vibration isolation method will be described in Example 6.
  • the external gear train 220 has a pitch circle 230 diameter value
  • the driving gear 200 has a shape dimension of 1/ ⁇ 2 (0.7071)
  • the driven gear 210 has a shape dimension of ⁇ 3 (1.73202).
  • the vibration transmission rate ratio (T.R.) is lowered by asynchronous rotation of angular speed and phase different from the reduction ratio of the speed transmission ratio 0.4 to insulate the vibration of the hexamotor 100
  • the driven gear 210 on the transmission shaft 370 is a mounting disk 380
  • the external compound gear train 220 to which the six driving gears 200 are coupled is formed by providing the teeth of the driven gear 210 on the outer circumferential surface of the disk in an integrated shape.
  • Example 3 Step motor and sine wave hollow rotating shaft
  • Example 3 is a traction motor speed-torque characteristic curve of FIG. 7, 5 phase of FIG. It will be described with reference to the shape diagram of the step motor and the double sine wave hollow rotating shaft.
  • the motor type and driving method is a core component of an electric vehicle, and there is no absolute selection factor to increase the efficiency in industrial use. It is desirable to derive an improvement direction that compensates for the shortcomings and reflect it in the system design.
  • a traction motor such as a car, requires high torque for starting and driving on an uphill road, medium torque for city driving, and low torque for high-speed driving due to its driving characteristics.
  • high efficiency and weight reduction are essential to reduce battery capacity and improve fuel efficiency, along with reduced weight, high efficiency, and quick response.
  • the driving performance of the traction motor is an AC induction motor (asynchronous) or synchronous because of the variable operation range characteristics that require frequent starting, acceleration, constant speed, deceleration, and stopping in a wide speed range and rated torque in a low speed range and rated output in a medium speed range.
  • a DC motor is more advantageous than an electric motor, and a permanent magnet type DC motor capable of realizing high torque at low speed, and having relatively high efficiency and miniaturization is more preferable as a vehicle power source.
  • the above characteristics are advantageous in energy saving if the armature winding of the rotor 180, which consumes a lot of energy, is replaced with a permanent magnet, and high efficiency and miniaturization are inevitable in the in-wheel motor where the power source is located in the wheel 310 Ease of control, improvement of cooling performance of permanent magnet motor and low vibration technology are required.
  • Permanent magnet DC machines are classified into general DC motors with brushes, non-commutator DC motors (BLDC motors), step motors 170, servo motors, etc., but in this embodiment, the rotation angle and rotation speed are Proportional to the number of input pulses per second, a sensor that detects the position of the rotor for position and speed control, an encoder or resolver that detects speed, and feedback configuration are unnecessary.
  • a step motor 170 having a digital control function with good reverse rotation responsiveness is employed.
  • the step motor 170 is a digital version of the electric motor, also known as a stepping motor or a pulse motor, and its general characteristics and embodiments are widely known and utilized in numerous technical documents and patents, so in this embodiment, a traction motor such as a car (traction motor) characteristics and supplementing the basic functions of the conventional step motor will be mainly described for improvement measures required when applied to the in-wheel hexamotor system 10 .
  • stepper motor 170 is divided into two-phase, three-phase, four-phase, and five-phase winding type according to the number of stator phases, and variable reluctance (VR) type according to the shape of the rotor (rotor); It can be broadly divided into permanent magnet (PM) type and hybrid (HB) type, and is divided into unipolar (unipolar) driving and bipolar (bipolar) driving according to the driving method.
  • PM permanent magnet
  • HB hybrid
  • the step motor 170 has a total motor rotation angle proportional to the total number of input pulses, a motor rotation speed is directly proportional to the number of input pulses for 1 second, and an angular error per step is within 5% ( ⁇ 0.05°) , rotation angle error is not accumulated for every step, feedback for rotation angle detection is unnecessary, ultra-low speed synchronous rotation is possible, so start and stop response is good, maintenance such as brush replacement required for DC motor is unnecessary.
  • Reliable and simple control system relatively inexpensive, and excellent in response to start, stop, and reverse rotation required for traction motors. It has properties that control its behavior.
  • step motor 170 has many advantages, it is vulnerable to an inertial load compared to other types of motors, has a small relative torque compared to its size, and has the disadvantages of being easy to dephosporization during rapid deceleration in a high-speed rotation state. Therefore, for application to traction motors such as automobiles, steps to suppress step-out, increase torque and moment of inertia, and vibration suppression are required in actual industrial applications.
  • Step motor 170 precisely synchronizes with the pulse signal output from the controller to the driver to perform very accurate positioning and speed control, and high torque characteristics and low vibration and positioning errors at low speeds do not accumulate, so high-precision positioning is possible. It is a simple driving system that does not require a separate feedback signal and encoder for control, and can be applied as a vehicle power source at a relatively low cost compared to other methods.
  • stepper motor 170 Advantages of the stepper motor 170 are, as shown in FIG. 7 , a high torque and a constant torque region 150 in the low and medium speed ranges, and a constant power region 160 in high speed driving. ), suitable for the characteristics of a traction motor that starts, accelerates, decelerates, and stops frequently in a wide speed range.
  • the high responsiveness that operates simultaneously and the responsiveness of the synchronous operation makes it easy to apply the cooperative motor driving method 140 in which the six hexamotors 100 are operated collectively.
  • the rotation speed of the step motor 170 can control the number of input pulses per second to control the motor speed by rotating at a specific angle, and the rotation of the motor can be freely changed by changing the number or frequency of the input pulses, so that position control and synchronization are possible. It operates as a high-speed control motor and maintains a holding torque (self-retaining force) that maintains a stopped position when the rotor stops even if there is no control signal after positioning. Cost reduction is possible.
  • Step motor 170 which is mainly used in actual industry, is a two-phase and five-phase motor, which is a combination of poles that are activated to rotate the rotor 180 made of two cups and a permanent magnet.
  • a 2-phase motor has 'A''B' 2 phases and 8 magnetic poles
  • a 5-phase motor is 'A''B''C''D''E' 5 Dog phases and 10 poles constitute the stator 190
  • the resolution is 200 steps per rotation for a 2-phase motor (0.0314 radians per step, 1.8 degrees), and 500 steps per rotation for a 5-phase motor. 0.0125 radians per step, 0.72 degrees).
  • the two-phase motor is economical because the control method is simple and an inexpensive driver can be applied.
  • 5-phase motors are relatively expensive than 2-phase motors, but torque ripple is reduced (approximately 5%) with a small step angle, so vibration is very small, high resolution, high acceleration and deceleration rates, and synchronization are excellent.
  • the five-phase motor moves 0.72 degrees (°/step) per step, so the possibility of out-of-sync (step-out) due to overshooting or undershooting is low with a step angle smaller than 1.8 degrees (°/step) of the two-phase motor It increases torque by activating more phases than a two-phase motor, reduces torque ripple to minimize vibration, and has smooth rotation characteristics, so it has vibration resistance, low noise and high torque characteristics
  • a 5-phase stepper motor 170 is more preferable for a traction motor of a vehicle.
  • the actual movement distance of one step becomes 1.6788mm (4.1971mm*0.4) with the reduction ratio of It is a very difficult driving method to implement in a motor (asynchronous) or synchronous motor.
  • Ultra-low-speed synchronous rotation according to the positional movement characteristics of about 2 mm per second or less, high torque characteristics at low speed, vehicle driving by detailed digital control, differential function, constant torque area 150 and constant output area 160
  • the combination of torque vectoring and cooperative regenerative braking 580 for distributing the required torque for each mode in the cooperative motor driving method 140 for each mode of Embodiment 1 is a step motor 170. It prevents the outage of the engine, and provides a method of optimizing the use of energy, displaying smooth deceleration and stopping characteristics.
  • the above-mentioned revolutions per minute (RPM) is converted to speed and the driving speed is 1000RPM-50km(1000*60*2.098m*0.4), 2000RPM-100km(2000*60*2.098m*0.4), 3000RPM-151km(3000*60) * 2.098m*0.4), 4000RPM-201km (4000*60*2.098m*0.4), and 5000RPM-251km (5000*60* 2.098m*0.4) driving characteristics are 170) is suitable for the torque and output characteristics of the constant torque region 150 of less than 1000 RPM and the constant output region 160 of 2000-3000 RPM, which are the driving characteristics.
  • the vehicle requires frequent and repeated start, acceleration, constant speed, deceleration, and stop mode operation, and a constant torque area 150 at low speed such as city driving and a constant power area 160 such as a highway to which constant speed driving and the legal speed limit are applied.
  • a constant torque area 150 at low speed such as city driving and a constant power area 160 such as a highway to which constant speed driving and the legal speed limit are applied.
  • the step motor 170 rotating shaft 120 may be a solid shaft, but a hollow shaft may be adopted. It is superior in terms of heat dissipation if a hollow tube is used as the rotation axis. Furthermore, the hollow shaft has a positive sinusoidal corrugated tube shape in which the negative (-) value of the sine wave is converted into a positive (+) value when viewed in a cross section perpendicular to the rotation axis.
  • the inner and outer areas of the hexamotor rotating shaft may have a geometrical shape that is expanded ⁇ times compared to a flat tube or a solid shaft.
  • the double sine wave hollow rotating shaft 130 utilizes a hollow hollow tube with a cross-section extending ⁇ times as a heat exchange channel of the rotor 180 to cool the permanent magnet and the rotor 180 core as a heat source to cool the rotor ( 180), a decrease in motor output can be prevented, and a more detailed cooling method is described in Example 5, a vibration isolation measure is described in Example 6, and a braking function in combination with regenerative braking is described in Example 4.
  • the step motor 170 is generally adopted as a power source for the wheel part of a vehicle having a low rotation speed of 3000 RPM or less, but the output and torque of the motor are increased by high voltage pulse input, and the rotation shaft 120 of the step motor 170 ) can be adopted not only as a solid shaft but also as a hollow shaft, and further improved from the hollow shaft to the positive sinusoidal hollow rotary shaft 130 to increase the moment of inertia (I) and secure a heat exchange passage for motor cooling, two-phase It has the advantage of reducing vibration and improving torque characteristics by reducing torque ripple by using a 5-phase motor with a smaller step angle (0.72 degrees) than a stepper motor.
  • Example 4 Braking method of in-wheel hexamotor
  • Embodiment 4 relates to the braking function of the in-wheel hexamotor system of Embodiment 1, and FIG. 9 will be described with reference to the arrangement and shape of the drum brake and the shape of the blade fan of FIG.
  • the type of brake that converts the kinetic energy of a vehicle into thermal energy through mechanical friction and dissipates the generated heat in the atmosphere to provide braking functions such as deceleration, stopping, or parking It can be roughly divided into a foot brake, an auxiliary brake that supplements the commercial brake, and a parking brake that maintains a parking state.
  • the step motor 170 and the cooperative motor driving method 140 of Embodiment 2 have a very large holding torque when stopped, so when designing a braking function in combination with the regenerative braking 580 of the motor, commercial Alternatively, it has the advantage that it does not require a position maintaining mechanism such as a service brake, but the auxiliary brake and the parking brake for maintaining the parking state are necessary in terms of safety in actual industrial applications, and a motor other than the step motor 170 is used. If adopted, there is a need for a service brake with a mechanical braking function.
  • the mechanical braking method increases the eccentric axial load and the suspension mass with the unbalanced mass of the disk rotor rotating in the same rotational direction, angular speed and phase as the wheel, and rather than the disk brake method that erodes the narrow wheel inner space, wheel rim (
  • a brake drum 510 is attached to the inner circumferential surface of the chassis 720 of the 320, and a brake shoe 520 and
  • the drum brake method 500 having a self servo action characteristic by adding a brake assembly of a brake lining 530 and an anchor pin 570 has a narrow internal space and many mechanical parts are integrated. It is preferred in in-wheel motor systems.
  • the mechanical braking function of the present invention is to attach the brake shoe 520, which is a mechanical braking device, and the brake lining 530 mounted on the shoe, to the outer peripheral surface in the horizontal direction ( ⁇ , 2 ⁇ ) of the housing cylinder 700, the anchor pin 570 ), and mounted on the inner peripheral surface of the wheel rim 320 by attaching a brake drum 510 having an air vent (air exhaust) groove for dissipating frictional heat caused by compression braking of the brake as a driving wind 640 to the inner circumferential surface of the wheel rim 320 to install an AC induction motor , used as a service brake of a synchronous motor or combined as an auxiliary brake and parking brake function of the step motor 170.
  • an AC induction motor used as a service brake of a synchronous motor or combined as an auxiliary brake and parking brake function of the step motor 170.
  • the drum brake method 500 function is operated hydraulically by placing a wheel cylinder in the inner space of the wiring air chamber 750 at the rear end of the hexamotor 100 of the motor housing unit 70, or placing the actuator 540, By perforating the outer peripheral surface of the cylinder 700 of the motor enclosure 70, it is provided as a brake assembly operated by a brake shoe 520 and an anchor pin 570 to add a mechanical braking function by frictional force, but reading in consideration of the self-boosting action Depending on the characteristics of the leading shoe 550 and the trailing shoe 560, a leading trailing shoe type, two leading shoe type, and a duo servo type type) to select the enemy from several commercially available methods.
  • the mechanical braking function of the braking method 50 is the braking function of the stopping torque braking 590 using a self-holding force (holding torque) and the regenerative power generation braking that converts kinetic energy into electric energy with an inverter, a converter and a battery ( 580) provides a dual (mechanical braking + regenerative braking) or triple (mechanical braking + regenerative braking + stopping torque braking) braking function that combines the electronic braking functions of the 580).
  • the combination of the double or triple braking function can be used as an auxiliary brake or parking brake that supplements the stopping torque braking (590) function using the holding torque and the regenerative generating braking (580) function, and for safety
  • the braking function must be sufficiently secured, and in an unexpected situation such as a head-on collision situation, an emergency braking function that directly transitions to the stop mode without the step-by-step deceleration mode of the regenerative power braking 580 function is provided.
  • the electronic brake function of the conventional regenerative braking (580) method recovers kinetic energy as electric energy and can be recycled for driving the motor, thus exhibiting an advantage different from the mechanical braking method using frictional force, but sudden braking of the vehicle It is an inconvenient factor that hinders smooth and comfortable driving because it applies a shock.
  • the regenerative power braking function of the cooperative motor driving method 140 of Embodiment 1 as a method of mitigating such a braking shock and realizing a smooth deceleration and braking function according to the front-wheel drive, the rear-wheel drive, or the four-wheel drive method
  • a multiple cooperative regenerative braking system that doubles or triples mechanical and quiescent torque braking functions to reduce the vehicle's deceleration and stopping modes.
  • emergency braking can be added to improve riding comfort and improve braking quality and driving safety.
  • Example 5 Cooling method of in-wheel hexamotor
  • Embodiment 5 relates to the cooling system of the in-wheel hexamotor system of the present invention.
  • Cooling technology which is essential for miniaturization of motors, which is a core part of automobiles, and securing high output and durability is a core design technology for in-wheel motors.
  • Copper loss (i2R) and core iron loss (iron loss, hysteresis + eddy current loss), bearings, gears, etc. dissipate the energy lost in mechanical and wind loss to solve heat and heat dissipation problems, and economically satisfy the opposite conditions of weight reduction, moisture resistance, high efficiency, and high performance in actual industry. It is a very difficult task in terms of application.
  • In-wheel motor cooling technology is a key technology to ensure high efficiency, high performance, and durability of the motor. Since various mechanical and electronic parts are mounted in a complex structure in a limited space called the wheel, the size of the parts is required. The heat dissipation design of the motor and the motor enclosure is very important because the piping is difficult and the motor must be protected from the harsh external environment.
  • An air cooling type that cools the motor by convection or a water cooling type or oil cooling type cooling method in which a cooling fluid is circulated inside the motor by connecting a cooling liquid pipe is generally applied.
  • a speed reducer is added to the motor to compensate for insufficient torque, and the stator coil is operated with a high current drive method of about 50 A to meet the high torque characteristics.
  • Copper loss (i2R) due to winding resistance appears as heat proportional to the current squared (i2), and the opposite conditions of high efficiency, high performance, and durability are met due to damage to the coil insulator, decrease in magnetic flux density of permanent magnet and decrease in motor output. very difficult to satisfy.
  • in-wheel hexamotor system 10 of the present invention as opposed to the low voltage and high current driving of the external type in-wheel motor, six small motors advantageous for high voltage and low current driving are stored in the motor housing unit 70 in a collective type. It is possible to relatively reduce heat generation due to copper loss of the winding resistance of the stator coil with the structure of
  • NBAi N: coil turns
  • B magnetic flux density
  • A coil cross-sectional area
  • i current
  • the general heat transfer process of the motor is a path function representing the movement of heat
  • the Fourier heat conduction law related to conduction which is a heat transfer process inside a solid
  • convection which represents the combined effect of fluid flow
  • the increase in the amount of heat (Qcd) eventually increases the heat exchange area (A) and the thickness ( ⁇ x) of the heat sink and the motor enclosure, while increasing the internal and external temperature difference ( ⁇ T) of the system. cooling method is required.
  • the cooling system based on the Fourier heat conduction law includes a blade fan 600 in which the wheel spokes 330 are improved into a blade shape having an airfoil in order to increase heat conduction and heat transfer capacity, and a motor enclosure.
  • a cooling air flow port 610 having a profile cross-section of a plurality of cooling fins 620 placed in 70, and the double sinusoidal hollow rotating shaft 130 having an internal cross-sectional area expanded by ⁇ times as a heat exchange channel,
  • the blade fan 600 accelerates the driving wind 640 of the vehicle and improves the air flow to improve the heat conduction and thermal convection coefficient.
  • the wheel spoke 330 connecting the wheel rim 320 and the hub disk 340 is improved in the shape of a blade fan 600 having an airfoil, and the motor is cooled by a rotor of a turbofan that sucks the driving wind 640 .
  • the angle of attack (elevation, angle, ⁇ ) at the leading edge of the blade should be approximately 35 degrees or less from the outside of the wheel in the driving direction, and the trailing edge should be inclined in the direction of the wheel inward.
  • the disk 340 is connected.
  • the blade fan 600 has a fineness ratio (ratio of length and diameter) of about 3 or so is a streamlined or ellipsoidal shape, and a chord line distance c that is a straight line connecting the leading and trailing edges is about 0.02
  • a fineness ratio ratio of length and diameter
  • a chord line distance c that is a straight line connecting the leading and trailing edges is about 0.02
  • the shape of the motor enclosure 70 for accommodating the hexamotor 100 is formed in the space between the enclosure hub 730 and the motor enclosure 110.
  • the motor By placing 610 in the honeycomb shape of an Apollonian gasket in which a small circle (cooling air flow port) is repeatedly filled in the space between large circles (box cylinder, enclosure hub, motor containment) in the form of a tangent line, the motor The rigidity of the enclosure 70 is increased, and the inside of the cooling air flow port 610 is a profile cross-section having a cooling fin 620 with a thin thickness ( ⁇ x), and the heat exchange unit area (A) is greatly enlarged to generate frictional heat.
  • the basic cooling method is an air cooling method 660 that cools the tooth surface of the external compound gear train 220 and the heat dissipation of the brake lining 530 and the brake drum 510 and the heat generation of the hexamotor 100.
  • the cooling air flow port 610 is a space between the housing cylinder 700, the housing hub 730, and the motor containment 110, ⁇ /6, ⁇ /2, 5 ⁇ /6, 7 ⁇ /6, 3 ⁇ /2, Place a total of 30 pieces, 5 each in the 11 ⁇ /6 direction.
  • the Descartes equation to find the size of the osculating circles or Soddy circles of the three circles when two circles are tangent and there are circumscribed circles. ' Equation), the radius a b of the inscribed circle, the radius c of the circumscribed circle, and the radius x of the fourth cause kissing circle in contact with the 3 circles can be obtained to obtain the size of the cooling air flow port 610 .
  • the size of the cooling air flow port 610 is A(0.354438)-1, B(0.167334)-2, which is 0.1 or more compared to the unit diameter D(1), which is the size of the virtual gear 290.
  • a total of 30 pieces (5*6 locations) of C(0.100240)-1 and D(0.154701)-1 are secured, and the remaining empty space is used as a refrigerant jacket 630 to use water (sensible heat) ( Water) or a phase change material (PCM) such as paraffin with high latent heat and thermal conductivity as a thermal energy storage and temperature control material to store and release thermal energy to improve cooling efficiency improve
  • the inside (radius: R) of the cooling air flow port 610 is 12 times (2 ⁇ R + 6R) times the size of the cooling air flow port 610 radius (R) when the hexagonal lattice profile cross section of the six cooling fins 620 is adopted. It is enlarged and the heat exchange area of the entire cooling air flow port 610 is 360 times (12R*30 pieces) of the radius R compared to the radius R, and it is a heat sink function that has a thermal convection area (A), accelerated by the blade fan (600).
  • the cooling efficiency of the hexamotor 100 is improved by sucking the traveling wind 640 to cool the cooling fins 620 , the refrigerant jacket 630 , and the hexamotor 100 .
  • the positive sine wave hollow rotary shaft 130 which is a heat exchange passage of the rotor 180, is a cylindrical structure with an empty shaft inner space as in the third embodiment. Reduced and expanded ⁇ times the surface area to increase the heat dissipation area, thereby emitting the amount of heat (Qcd) in the inner space of the electromagnetic rotating body to the outside Since and convection occurs, it has structural characteristics that can further increase the cooling efficiency of the hexamotor 100 .
  • the double sinusoidal hollow rotating shaft 130 further improves material-mechanical torsional and bending strength compared to a full solid rotation shaft, and has a cross-sectional area that is ⁇ times larger than that of a flat tube compared to the same volume, wrinkling and buckling ( buckling), improved tensile, torsion, bending and compressive strength are greatly improved, and the space for heat ambush is greatly reduced.
  • water is supplied as a cooling water to the refrigerant jacket 630, which is an empty space between the cooling air flow port 610 of the motor housing unit 70 and the motor containment port 110.
  • Air cooling of a water cooling type cooling method (670) or a phase change material cooling method (680) that further improves heat storage and heat dissipation effect by injecting a phase change material (PCM) such as paraffin or ionic compound A hybrid cooling scheme 690 in combination with scheme 660 is provided.
  • PCM phase change material
  • the water cooling type cooling method 670 or the hybrid cooling method 690 combined with the phase change material cooling method 680 is a latent heat material that absorbs and discharges water (1cal/g°C) or a lot of heat with high specific heat as a cooling water.
  • the running wind (640) is air with a small heat capacity and low thermal conductivity (0.31 kcal/Nm3°C).
  • PCM phase change material
  • a blower 650 is installed in the space of the outer edge of the wiring air chamber 750 and parabola anchor 710, which is the rear end of the hexamotor 100.
  • the driving wind 640 is forcedly blown by battery power to cool the cooling air flow port 610 and the bi-sine wave hollow rotation shaft 130, and the cooled air flow pipe is a coolant or a phase change material and a hexamotor (100) It is an active hybrid cooling method 690 in which heat exchange is performed by absorbing the heat of the
  • the active hybrid cooling method 690 transfers the waste heat of the hexamotor 100 to the chassis (chassis) by connecting the heat exchanger 780 of the blower 650 with a flexible tube, and is in a stationary state without running wind It is a heat exchange method that detects abnormal overheating of the motor unit by a temperature sensor and drives the blower 650 with battery power to cool the motor unit, or opens the heat sink 770 to forcibly blow air outside when the air conditioning capacity is exceeded.
  • the active hybrid cooling method 690 is systematically integrated with the chassis 720 or the battery cooling system of the vehicle and the power supply cooling system such as an inverter and a converter together with the basic air cooling cooling method 660 or the hybrid cooling method 690 Therefore, it is more preferable to improve the energy use efficiency by recycling the waste heat of the battery part, the power supply part, and the motor part to the automobile air conditioning (Heating, Ventilation, Air Conditioning, HVAC) system.
  • the power supply cooling system such as an inverter and a converter
  • the latent heat storage and release function of the hybrid cooling method 690 in which the air-cooled cooling method 660 and the water-cooled cooling method 670 or the phase change material cooling method 680 are combined is water having high sensible heat and latent heat energy. It has a high energy storage density and an isothermal storage process that releases the stored energy by using a hyperphase change material (PCM) as a heat sink.
  • PCM hyperphase change material
  • the shape of the blade fan 600 having an airfoil of the wheel spokes 330 is improved to accelerate the driving wind 640 according to vehicle driving to generate frictional heat ( ⁇ ), the brake drum and the shoe, the hexamotor 100 heat generated by copper loss and iron loss, etc., the motor enclosure 70, the sine wave hollow rotating shaft 130, the radial cooling fin 620 of the profile cross-section having An air cooling type cooling method 660 using the cooling air flow port 610 as a heat exchange passage is provided as a basic cooling method.
  • the refrigerant jacket 630 which is the inner space between the housing cylinder 700 and the motor containment port 110 and the cooling air flow port 610, is filled with water or a phase change material (PCM) such as paraffin as a refrigerant.
  • PCM phase change material
  • Air-cooled + water-cooled, air-cooled + phase-change material-cooled hybrid cooling system 690 combined with the air-cooled cooling system 660 and an active hybrid cooling system integrated with an automobile air conditioning system (HVAC) provide high torque, high efficiency, It improves the heat dissipation characteristics of the hexamotor 100, which is an obstacle to securing high output characteristics, life extension, high performance, and durability.
  • HVAC automobile air conditioning system
  • Example 6 Vibration isolation method of in-wheel hexamotor
  • a sixth aspect of the present invention is a vibration isolation system of an in-wheel hexamotor system
  • FIG. 13 is a conceptual diagram of a shear vibration isolation method.
  • 14 illustrates a cross-sectional view of a hub of a motor housing unit provided with a vibration isolation damping groove into which a hub spring and a rubber damper are inserted.
  • the motor that generates the driving force is located in the tire wheel hub, the motor is located under the suspension, so the weight of the wheel is unavoidable. Since the adult load holding (traction force) is deteriorated, the vibration transmitted to the chassis and body through the spring of the suspension is increased, thereby reducing the riding comfort.
  • the car body and chassis vibrate due to shock from the road surface and harmonized vibration (vibration) of the engine or motor while driving.
  • a strut composed of a shock absorber, an arm with two support points at one end, and a link mechanism with one support point at both ends
  • MacPherson type It can be specified as a binary suspension system that combines tire air pressure and struts with a double wishbone type, a torsion beam axle type, and a multi link type.
  • a rotationally unbalanced mass receives an eccentric axial load and force (excitation force), generates a bending moment, and causes a whirling phenomenon in which the drive shaft deviates from the neutral axis.
  • the eccentricity of the wheel and the elements of non-uniform rotational mass such as large rotors and ring gears are mutually coupled, and the displacement ratio (X/Y), which is the displacement transmission rate of vibration, is the difference between the forcing frequency ( ⁇ f) and the natural frequency ( ⁇ n).
  • the external compound gear train 220 to which seven gears of one driven gear 210 and six driving gears 200 of Embodiment 1 are coupled is clockwise and counterclockwise, respectively. It has out-of-phase rotation characteristics operated in different rotation directions, angular speeds, and phase angles of Whirling, which is an angular motion of the shaft that appears in in-phase rotation, and bending vibration of the shaft are minimized.
  • the driven gear 210 on the transmission shaft 370 has a pitch circle diameter of ⁇ 3, and the driving gear 200 is 1/ ⁇ 2, so that the ratio of the forcing frequency ( ⁇ f) to the natural frequency ( ⁇ n)
  • the vibration transmission rate is less than 1
  • the vibration is isolated, and when it is less than ⁇ 2, the vibration amplification phenomenon that becomes greater than 1 occurs, and the excitation force of the wheel and the wheel is dispersed to six driving gears 200 and hexamotor 100
  • the backlash 260 which is a gap between the tooth surfaces between the driven gear 210 and the driving gear 200, and the gear dimensional tolerance, etc., are complementary to the efficiency of power transmission and heat dissipation of motor loss and vibration energy. It is based on a functional relationship.
  • the power transmission efficiency of a spur gear is 98 ⁇ 99.5%, and 0.5 ⁇ 2% of energy is inevitably lost as heat energy, and the backlash 260, which is a gap between the normal and the circumferential and radial tooth surfaces of the gear, and the gear dimensions are allowed.
  • Tolerance is the hexamotor (100) coil loss (copper loss, i2R), core loss (hysteresis loss + eddy current loss), mechanical losses such as bearings and gears are dissipated as thermal energy as frictional heat, and vibration and shock of the wheel are attenuated. a way to do it
  • the shear vibration isolation 400 function adds an additional mass-elastic meter (sub-vibration meter) to the suspension device 440, which is the primary vibration system of the vehicle, to reduce the magnitude of the vibration response in a wide driving range.
  • vibration is reduced within a given operating area, thereby providing improved driving and riding comfort.
  • the shear vibration insulation 400 function which is the sub-mass meter, has a spring constant or spring stiffness (k) and a damping ratio ( ⁇ ) between 0 ⁇ 0.05 and a hub spring 410 and a damping coefficient (damping coefficient) Coefficient, c) with a rubber damper 420 that dissipates vibration energy by increasing damping with viscoelastic behavior to absorb vibration of the tire 300 and wheel 310
  • k spring constant or spring stiffness
  • damping ratio
  • damping coefficient
  • c damping coefficient
  • Some vibration energy is isolated from the front end of the suspension device 440, which is a vibration system, to increase the overall suspension capacity of the vehicle.
  • the hub spring 410 and the rubber damper 420 are inserted into the space between the hub bearing bracket 740 and the housing hub 730 having a built-in hub bearing 360, but circumscribed on the circumferential surface of the hub bearing bracket 740 A hub spring 410 and a rubber damper ( 420) as a storage space.
  • the 2mm vibration-permissive gap of the vibration isolation and absorption groove 430 located between the wheel part 30 and the motor housing part 70 has a vibration sensitivity limit of 1 to 8 Hz and 10 ⁇ in vibration engineering. Considering that it has a displacement amplitude of -2 mm (0.01 mm) and the vibration sensor limit of a mechanical device (automobile) has a frequency of 10 to 100 Hz and a displacement amplitude of 0.01 to 1 mm, the wheel part 30 and the motor box A space of 2 mm, which is a vibration permissible space between the body parts 70, is an appropriate design criterion.
  • the harmonic excitation frequency which is the rotational speed of a car equipped with an eccentric tire (eg 215/55 R17 tire) with a rotational imbalance mass and rotating, 13 Hz for 100 km/h and 200 km/h for A hub that absorbs and accumulates harmonic vibration (vibration) caused by curved road surface bumps and uneven rotational mass of eccentric tires as it is within the range of 100 Hz, which is the limit of vibration sensation of the human body or machinery at 39 Hz at 300 km/h.
  • the shear vibration isolation 400 function consisting of a spring 410 and a rubber damper 420 that insulates vibration by reducing the amplitude X of the resonance region with an internal damping resistance is an effective vibration isolation method as a resonance control measure.
  • the hub spring 410 is a helical compressive spring and rubber damper 420, which is easy to manufacture and has good efficiency, and the rubber damper 420 has a cylindrical rubber band shape.
  • the diameter (D) and the size of the rubber damper 420 are ⁇ 2 times (1.4142) of the receiving groove diameter of 10mm to secure the elastic compression capacity to respond to the strain rate ( ⁇ s) of the shock and to secure the rigidity of the vibration isolation region. desirable.
  • the fixing method of the hub spring 410 and the rubber damper 420 is a tensioning method in which one end of the spring and the damper is fixed and pulled in the longitudinal direction to reduce the diameter or thickness. If the position is fixed by restoring elasticity by relaxing after being inserted into the suction groove 430, it can be easily fixed without parts such as bolts or wedges that cause stress concentration and shear, and the hexamotor (10) part It insulates the shock and vibration of the wheel 30 and reduces fatigue of the structure due to vibration, improves suspension performance, and improves riding comfort.
  • the rubber damper 420 having the shear vibration insulation 400 function has a large loss factor because of a large loss coefficient, and energy loss occurs due to intermolecular friction. Polymer material having viscoelasticity is used for energy absorption. Then, by lowering the vibration transmissibility ratio (T.R.) at the resonance point to 3.5 or less to reduce the response magnitude of the shock and vibration energy in a wide operating range at the front end of the suspension 440, the resonance is suppressed and It has a function of shear vibration isolation 400 for attenuation processing.
  • T.R. vibration transmissibility ratio
  • the shear vibration insulation 400 function is an improved way to assist the existing suspension system consisting of a coil spring and a shock absorber, and the primary-tire 300 air pressure, secondary-hub spring 510 and rubber damper 420 ), the tertiary-coil spring and the improved three-way suspension 440 system of the strut 450 of the shock absorber attenuates the shock and vibration energy of the wheel part 30, eventually under the suspension mass or the spring It has the effect of increasing the suspended mass or the sprung mass equivalent to the reduction of the unsprung mass.
  • the shape dimensions of the pitch circle 230 of the hexamotor driving gear 200 and the driven gear 210 on the transmission shaft 370 are 1/ ⁇ 2 and ⁇ 3.
  • Reduce the vibration transmission rate ratio (T.R.) by lowering the vibration transmission rate ratio (T.R.) by having the reduction gear train and out-of-phase rotation characteristics operated at different rotational directions, angular speeds and phase angles in clockwise and counterclockwise directions It is used as a measure to suppress the impact and harmonious excitation (vibration) caused by the unbalanced mass (eccentric mass) of the wheel part including the eccentricity and eccentricity of the tire.
  • heat dissipation of vibration energy due to backlash 260 which is a gap between the tooth surfaces between the driving gear 200 and the driven gear 210, and the gear dimension tolerance
  • the hub spring ( 410) and a rubber damper 420 made of a viscoelastic material are inserted into the space between the hub bearing bracket 740 and the housing hub 730 by inserting 12, 18, 24, or 30 pieces to reduce the unevenness of the road surface of the tire 300.
  • Improved driving performance and ride comfort by adding a shear vibration insulation 400 function that isolates and absorbs vibration energy due to running and rotational imbalance mass (eccentric mass) at the front end of the suspension device 440 and suppress the fatigue of the vehicle structure.
  • Example 7 Motor enclosure of in-wheel hexamotor system
  • a seventh aspect of the present invention relates to a housing of an in-wheel hexamotor system that accommodates and stores all the above-described parts from Embodiments 1 to 6 to realize functions.
  • Figure 17 illustrates a parabolic anchor plan view.
  • the design of the motor housing unit 70 of the in-wheel hexamotor system 10 preferably has a multi-concentrated shape of circular tubes in order to secure material savings and rigidity, and as shown in FIG. 15 , six motor enclosures (110) and 30 cooling air flow ports 610, one enclosure cylinder 700, and one enclosure hub 730, a total of 38 (6+30+1+1) hollow cylinders are converged by the circumferential surfaces of the hollow cylinders.
  • the enclosure cylinder 700 and the enclosure hub 730 form an outer layer (face), and 6 motor containment ports and 30 cooling air flow ports 610 function as an intermediate layer (core) or filler (filler), and the outer layer and
  • the geometric shape of the hexagonal lattice filling structure in which the thick intermediate layer is concentrated and the Apollonian gasket structure of the cooling air flow port 610 is an effective method to further increase the rigidity of the motor enclosure 70 . to be.
  • the motor housing unit 70, the motor housing 110 position is 0 (or 2 ⁇ ), ⁇ /3, 2 ⁇ /3, ⁇ , 4 ⁇ /3, 5 ⁇ /3, the position of the cooling air flow port 610 is In the space between the enclosure hub 730 and the hexamotor 100, the enclosure cylinder 700 and the enclosure hub ( 730)
  • the rigidity and vibration resistance that depend on the geometric shape of the material are increased to resist the vehicle’s load, impact, and external force of harmonious excitation (rigidity).
  • the motor housing unit 70 includes six hexamotors 100 and a driving gear 200 and one driven gear 210, a transmission shaft 370, a cooling air flow port 610, a refrigerant jacket 630, and vibration.
  • the groove 470 and the like form the motor enclosure 70, which is a bracket of the in-wheel hexamotor system 10, and a blower 650, a heat sink 770 at the edge of the wiring air chamber 750 and the parabolic anchor 710. ), the heat exchange port 780, and the power wiring outlet 760 are mounted.
  • the transmission shaft 370 and the hub bearing 360 are installed radially from the transmission shaft origin 390, the bearing bracket 740 and the mounting disk 380 and the transmission shaft.
  • the wheel hub 350 is formed by placing the vibration insulation absorption groove 430 for vibration isolation between the motor housing part 70 and the motor housing unit 70, and six hexamotors 100 are stored in the outer direction in a hexagonal grid shape.
  • the cooling air flow port 610 has a porous cylindrical honeycomb shape arranged in an Apollonian gasket filling structure.
  • a wiring air chamber 750 is placed at the rear end of the hexamotor 100 inside the housing cylinder 700, and the input/output power line and control line of the hexamotor 100 are wired and connected to the power wiring outlet 760, 6
  • the two sine wave hollow rotating shafts 130 and the cooling air passing through the 30 cooling air flow ports 610 are joined to form a heat exchange system with the heat sink 770 and the heat exchange port 780, and the enclosure cylinder 700 outside horizontal direction
  • An actuator 540 or a hydraulic driven wheel cylinder for driving the brake shoe 520 mounted on ( ⁇ , 2 ⁇ ) is placed, and the suspension upper arm/link groove 460, which is a support point of the suspension device 440, is located on the upper and lower parts of the outer surface and A suspension rod arm/link groove 470 is provided.
  • the shape of the rear end side of the housing cylinder 700 is to place a parabola anchor 710 of a material mechanically that is a fully stressed beam, but a steering arm/link groove 480 on the side. is provided to bind the tie rod and steering arm or steering link of the steering device, and is suspended by a parabolic anchor 710 with a suspension upper arm/link groove 460 on the upper surface and a suspension rod arm/link groove 470 on the lower surface.
  • the maximum allowable bending stress A means for securing the rigidity of the motor housing unit 70 in a shape having bending stress and shear stress and mounting the tire 300 and the wheel 310 to the vehicle chassis 720 is provided. to provide.
  • the arm and link connecting the motor housing unit 70 and the chassis 720 are a mechanism for connecting two points, an arm having two support points at one end and a link having one support point at both ends.
  • (link) and the geometry is various steering devices and suspension devices depending on the steering method (two-wheel steering, four-wheel steering) and the driving method (front-wheel drive, rear-wheel drive, four-wheel drive)
  • the suspension groove 490 for mounting the strut 450 and the arm which is the support point of 10 places (steering-2, suspension-8)
  • the hub carrier, control arm (link), trailing arm (link), upper arm (link), lower arm (link), and anti-roll bar (stabilizer) links depend on the vehicle model, steering method and driving method.
  • toe control link, lateral link, etc. are provided to provide support points such as the tire 300 and the wheel 310, the in-wheel hexamotor system 10, the suspension 440 and the chassis 720 in the geometrical coupling structure with the mechanism. Assembling rigidity is ensured so that the optimum setting can be found.
  • the motor enclosure 70 of the in-wheel hexamotor 100 is arranged, material mechanically, strength is related to the intrinsic properties of the material, and rigidity is dependent on the properties and geometry of the material, so nickel, chromium , manganese, molybdenum steel, etc. or special steel or alloy steel to secure high strength characteristics that can sufficiently support the load of the chassis (chassis) and body (body), a total of 38 (6+30+1+) 1) It is desirable to express high-rigidity with a hexagonal grid-type filling structure in which the circumferential surfaces of the hollow cylinder are interconnected and a geometric shape of a fully-stressed beam such as a parabola anchor.
  • Example 8 Dimensionless shape dimension arrangement of in-wheel hexamotor system
  • An eighth aspect of the present invention relates to the dimensionless shape dimensions of the in-wheel hexamotor system described above in Examples 1 to 7, and FIG. 18 illustrates the dimensionless shape dimensions.
  • the shape dimension of the in-wheel hexamotor system 10 is appropriately adjusted according to the wheel size and vehicle type, such as small, medium, large, etc., but the gear size is the diameter value of the pitch circle 230 where the line connecting the centers of the two gears meets. It is assumed that a virtual gear 290 of a size circumscribed in an isosceles triangle having a vertex in contact with the inner circumferential surface of 320 and the pitch circle 230 of the two driving gears 200 is set to “1” which is the unit diameter. ”, the size of the drive gear 200, the driven gear 210, the external compound gear train 220, the motor containment 110, the hexamotor 100, and the motor enclosure 70 is a relative ratio. It is presented as a reference value for dimensionless numbers so that it can be effectively and appropriately used in actual industrial applications.
  • Preferred dimensionless shape dimensions of this embodiment are 1/ ⁇ 2 (0.7071) for the driving gear, ⁇ 3 (1.7320) for the driven gear, and ⁇ 3 (1.7320) for the driven gear based on the pitch circle diameter (D: 1) of the virtual gear 290.
  • the external compound gear train is 1/ ⁇ 2+ ⁇ 3+1/ ⁇ 2 (3.1462)
  • the motor housing is (1/ ⁇ 2+ ⁇ 3)/2 (1.2195)
  • the inner diameter of the motor enclosure is (3) Let ⁇ 3+3/ ⁇ 2)/2(3.6587), and when the wheel rim inner diameter is 3.8867 ⁇ 4.3068, the air gap between the wheel rim and the motor housing cylinder is 0.1140- ⁇ t ⁇ 0.3240- ⁇ t minus the housing thickness ( ⁇ t), above
  • the diameter value of the wheel disk is ⁇ 3 or more
  • the diameter value of the mounting disk is ⁇ 3+2a(a: tooth tip height, addendum)
  • the housing hub housing the transmission shaft is (1/ ⁇ 2+ ⁇ 3)/2( 1.2195)
  • the size of the bolt circle diameter (BCD) 800 of the mounting disk is (1/ ⁇ 2+ ⁇ 3)/2 (1.2195) or less
  • the number of wheel bolt lug patterns (3, 4, 5, According to 6, 7, 8)
  • the number of teeth of the external compound gear train 220 which transmits the driving force of the hexamotor to the wheel part, is a pinion
  • the number of teeth (Z1) of the driving gear 200 is the basis from which the involute curve starts when the gears are meshed.
  • the driven gear 210 and the number of teeth (Z2) are 47, which is a prime gear ratio.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Transportation (AREA)
  • Power Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Arrangement Or Mounting Of Propulsion Units For Vehicles (AREA)
  • Electric Propulsion And Braking For Vehicles (AREA)

Abstract

La présente invention concerne un véhicule de type moteur-roue ayant, dans une roue de véhicule, un moteur, qui est une source d'énergie, la roue comprenant : une roue pour supporter un pneumatique et un poids de véhicule et transmettre de l'énergie ; des rayons, qui sont des parties pour relier un moyeu et un disque de la roue avec une jante en contact avec le pneumatique ; un arbre de transmission et un palier de moyeu, qui supportent la force de rotation de la roue ; et une partie de carter de moteur pour stocker et supporter l'arbre de transmission et le palier de moyeu. L'invention concerne un système de moteur-roue hexa dans lequel la partie de carter de moteur a des trains d'engrenages composés externes dans lesquels six moteurs d'entraînement (moteurs hexa) et des engrenages d'entraînement et un engrenage entraîné ayant l'extérieur en contact avec les six moteurs d'entraînement sont agencés selon une forme radiale hexagonale, et ainsi la pluralité de moteurs augmente la force combinée des vecteurs d'entraînement de l'arbre de transmission au moyen d'une vectorisation de couple de type à entraînement coopératif pour chaque mode tel que le démarrage, l'accélération, la vitesse constante, la décélération et l'arrêt par l'entraînement simultané des sept engrenages. De plus, l'invention concerne des mesures d'isolation de vibrations et un procédé de refroidissement, selon la présente invention.
PCT/KR2021/020029 2020-12-30 2021-12-28 Système de moteur-roue hexa WO2022145958A1 (fr)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116989122A (zh) * 2023-09-25 2023-11-03 江苏泰隆减速机股份有限公司 一种风电重载减速机

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR102559511B1 (ko) * 2022-10-09 2023-07-25 주식회사 모텍 회생제동 충전효율이 크게 향상된 전기차용 회생제동 시스템
KR102649660B1 (ko) * 2024-02-08 2024-03-21 주식회사 엘엠솔루션 공기 냉각 구조를 갖는 전기 자전거용 모터 구동 휠

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20120085590A (ko) * 2011-01-24 2012-08-01 자동차부품연구원 인휠 구동 시스템
KR20130010688A (ko) * 2011-07-19 2013-01-29 임형진 자동차용 휠
KR20140056700A (ko) * 2012-10-31 2014-05-12 한국전기연구원 전기자동차의 인휠모터 모듈용 냉각 장치
WO2017167617A1 (fr) * 2016-03-30 2017-10-05 Deregallera Holdings Ltd Unité motorisée électrique dans les roues
JP2020090979A (ja) * 2018-12-04 2020-06-11 トヨタ自動車株式会社 インホイールモータ

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20120085590A (ko) * 2011-01-24 2012-08-01 자동차부품연구원 인휠 구동 시스템
KR20130010688A (ko) * 2011-07-19 2013-01-29 임형진 자동차용 휠
KR20140056700A (ko) * 2012-10-31 2014-05-12 한국전기연구원 전기자동차의 인휠모터 모듈용 냉각 장치
WO2017167617A1 (fr) * 2016-03-30 2017-10-05 Deregallera Holdings Ltd Unité motorisée électrique dans les roues
JP2020090979A (ja) * 2018-12-04 2020-06-11 トヨタ自動車株式会社 インホイールモータ

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116989122A (zh) * 2023-09-25 2023-11-03 江苏泰隆减速机股份有限公司 一种风电重载减速机
CN116989122B (zh) * 2023-09-25 2023-12-12 江苏泰隆减速机股份有限公司 一种风电重载减速机

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