• DocumentCode
    869171
  • Title

    Optimal Design and Control of a Wheel Motor for Electric Passenger Cars

  • Author

    Yang, Yee-Pien ; Chuang, Down Su

  • Author_Institution
    Dept. of Mech. Eng., Nat. Taiwan Univ., Taipei
  • Volume
    43
  • Issue
    1
  • fYear
    2007
  • Firstpage
    51
  • Lastpage
    61
  • Abstract
    An optimal design and control technology of a wheel motor is proposed for small electric passenger cars. The axial-flux sandwich-type disc motor is designed with a rotor embedded with neodymium-iron-boron (NdFeB) magnets and two plates of stators, and is directly mounted inside the wheel without mechanical transmission and differential gears. Sensitivity analyses are performed to choose critical design parameters, which are the most influential in design objectives, to maximize the driving torque, efficiency, rated speed, and to minimize the weight of motor under various constraints of size, materials, and power sources. The optimal driving current waveform is proven to be the same as the fundamental harmonic of the back electromotive force to produce maximum torque with least ripples. The finite-element refinement results in the motor prototype with a maximum torque over 38 kgmiddotm and a corresponding torque density of about 1.72 kgmiddotm/kg at the maximum allowable phase current of 50.25 A (rms). Two such rear driving wheels are able to drive a 600 kg passenger car to accelerate from 0 to 40 km/h in 5 s on a 15 degree incline. This dedicated wheel motor is applicable to pure or hybrid electric vehicles as a promising solution to the direct-driven electric vehicle
  • Keywords
    electric motors; finite element analysis; hybrid electric vehicles; machine control; optimal control; rotors; sensitivity analysis; stators; torque; wheels; axial flux sandwich-type disc motor design; direct-driven electric vehicles; electric passenger cars; electric vehicles; finite element refinement; motor prototype; neodymium-iron-boron magnets; optimal control; optimal design; optimal driving current waveform; rotors; sensitivity analysis; stators; torque density; wheel motor; Finite element methods; Gears; Hybrid electric vehicles; Magnets; Optimal control; Rotors; Sensitivity analysis; Stators; Torque; Wheels; Axial-flux wheel motor; electrical vehicle; optimal driving current waveform; sensitivity analysis;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2006.886153
  • Filename
    4033132