Yaw Stability Control of 4WD Vehicles Based on Model Predictive Torque Vectoring with Physical Constraints

被引:0
作者
Kwangseok Oh
Eunhyek Joa
Jisoo Lee
Jaemin Yun
Kyongsu Yi
机构
[1] Hankyong National University,Department of Mechanical Engineering
[2] Seoul National University,School of Mechanical and Aerospace Engineering
[3] Hyundai Motor Company,Chassis System Control Development Team
来源
International Journal of Automotive Technology | 2019年 / 20卷
关键词
Model predictive control; Torque vectoring; Physical constraint; Torque distribution; Yaw stability;
D O I
暂无
中图分类号
学科分类号
摘要
This paper describes a yaw stability control algorithm of 4WD vehicles based on model predictive torque vectoring with physical constraints. A vehicle planar model based predictive rear and all-wheel torque vectoring algorithms were developed for 4WD vehicles by considering predictive states and driver’s steering wheel angle. The physical constraints applied to the model predictive control consist of three types: limitation on magnitude of tire force, change rate of tire force, and output torque of transfer case. Two types of torque vectoring algorithms, rear-wheel and all-wheel, were constructed for comparative analysis. The steady state yaw rate was derived and applied as a desired value for yaw stability of the vehicle. The algorithm was constructed in a MATLAB/Simulink environment and the performance evaluation was conducted under various test scenarios, such as step steering and double lane change, using the CarSim software. The evaluation results of the predictive torque vectoring showed sound performance based on the prediction of states and driver’s steering angle.
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页码:923 / 932
页数:9
相关论文
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  • [1] Filippis G D(2018)Energy-efficient torque-vectoring control of electric vehicles with multiple drivetrains IEEE Trans. Vehicular Technology 67 4702-4715
  • [2] Lenzo B(2015)Integral sliding mode for the torque-vectoring control of fully electric vehicles: Theoretical design and experimental assessment IEEE Trans. Vehicular Technology 64 1701-1715
  • [3] Sorniotti A(2016)An optimal torque vectoring control for vehicle applications via real-time constraints IEEE Trans. Vehicular Technology 65 4368-4378
  • [4] Gruber P(2017)Energy-efficiency optimization of torque vectoring control for battery electric vehicles IEEE Intelligent Transportation Systems Magazine 9 59-74
  • [5] Nijs W D(2014)Wheel torque distribution criteria for electric vehicles with torque-vectoring differentials IEEE Trans. Vehicular Technology 63 1593-1602
  • [6] Goggia T(2014)Comparison of feedback control techniques for torque-vectoring control of fully electric vehicles IEEE Trans. Vehicular Technology 63 3612-3623
  • [7] Sorniotti A(2015)Rear-wheel torque vectoring model predictive control with velocity regulation for electric vehicles Int. J. Vehicle Mechanics and Mobility 53 1555-1579
  • [8] Novellis L D(2018)Effect of handling characteristics on minimum time cornering with torque vectoring Int. J. Vehicle Mechanics and Mobility 56 221-248
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