• DocumentCode
    1133275
  • Title

    Fuzzy Gain-Scheduling Proportional–Integral Control for Improving Engine Power and Speed Behavior in a Hybrid Electric Vehicle

  • Author

    Syed, Fazal U. ; Kuang, Ming L. ; Smith, Matt ; Okubo, Shunsuke ; Ying, Hao

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Wayne State Univ., Detroit, MI
  • Volume
    58
  • Issue
    1
  • fYear
    2009
  • Firstpage
    69
  • Lastpage
    84
  • Abstract
    With the increased emphasis on improving fuel economy and reducing emissions, hybrid electric vehicles (HEVs) have emerged as very strong candidates to achieve these goals. The power-split hybrid system, which is a complex hybrid powertrain, exhibits great potential to improve fuel economy by determining the most efficient regions for engine operation and thereby high-voltage (HV) battery operation to achieve overall vehicle efficiency optimization. To control and maintain the actual HV battery power, a sophisticated control system is essential, which controls engine power and thereby engine speed to achieve the desired HV battery maintenance power. Conventional approaches use proportional-integral (PI) control systems to control the actual HV battery power in power-split HEV, which can sometimes result in either overshoots of engine speed and power or degraded response and settling times due to the nonlinearity of the power-split hybrid system. We have developed a novel approach to intelligently controlling engine power and speed behavior in a power-split HEV using the fuzzy control paradigm for better performances. To the best of our knowledge, this is the first reported use of the fuzzy control method to control engine power and speed of a power-split HEV in the applied automotive field. Our approach uses fuzzy gain scheduling to determine appropriate gains for the PI controller based on the system´s operating conditions. The improvements include elimination of the overshoots as well as approximate 50% faster response and settling times in comparison with the conventional linear PI control approach. The improved performances are demonstrated through simulations and field experiments using a ford escape hybrid vehicle.
  • Keywords
    PI control; battery powered vehicles; engines; fuzzy control; hybrid electric vehicles; optimisation; power control; velocity control; engine power control; engine speed control; fuzzy control; fuzzy gain-scheduling; high-voltage battery operation; hybrid electric vehicle; proportional-integral control; vehicle efficiency optimization; Engine speed control; engine speed control; fuzzy gain scheduler; fuzzy gain-scheduler; fuzzy logic control; hybrid electric vehicle (HEV); power split; proportional–integral (PI) control system; proportional-integral (PI) control system;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2008.923690
  • Filename
    4490175