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首页> 外文期刊>Journal of Dynamic Systems, Measurement, and Control >Influence of Tire Inflation Pressure on Vehicle Dynamics and Compensation Control on FWID Electric Vehicles
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Influence of Tire Inflation Pressure on Vehicle Dynamics and Compensation Control on FWID Electric Vehicles

机译:轮胎充气压力对电动汽车车辆动力学和补偿控制的影响

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This paper presents a comprehensive study revealing the influences of tire pressure variations and their distribution among four tires on vehicle dynamics performance and driver's steering workload for a four wheel independent drive electric vehicle (FWID EV). Then a direct yaw-moment control (DYC) strategy employing an unbiased adaptive model predictive control (MPC) algorithm is proposed to compensate for the influences. An unbiased estimation strategy is developed to update the time-variant prediction model for the adaptive MPC system. An extended magic formula (MF) tire model and a modified Unitire model involving tire inflation pressure are employed to describe the tire longitudinal and lateral forces, respectively. Various tire pressure variations are simulated in CarSim to exhibit the influences of tire inflation pressure, including all four tires at same and different pressures. The unbiased estimation results and compensation effects of the DYC strategy are also verified through simulations. A vehicle dynamics and lateral motion stability index, and driver's steering workload are proposed to quantify the influence of tire pressure variations and distributions. Analyses on the simulation results indicate that: pressure reduction on a front tire and rear tire induces a large steering angle and a large vehicle sideslip angle, respectively; all-tire inflation pressure decrease will increase driver's steering workload. The proposed DYC strategy can achieve satisfactory compensation effects through significantly decreasing the vehicle sideslip angle, steering wheel angle and reducing driver's steering workload by up to 90%.
机译:本文提出了一项综合研究,揭示了轮胎压力变化的影响及其在四轮独立驱动电动车辆(FWIDEV)上的四轮车辆动力学性能和驾驶员转向工作量之间的四个轮胎之间的影响。然后提出了采用非偏见的自适应模型预测控制(MPC)算法的直接偏航力矩控制(DYC)策略来补偿影响。开发了一种无偏估计策略来更新自适应MPC系统的时变预测模型。采用延伸的魔术公式(MF)轮胎模型和涉及轮胎充气压力的改进的未经修改的酉模型来分别描述轮胎纵向和横向力。在Cari​​m中模拟了各种轮胎压力变化,以表现出轮胎充气压力的影响,包括所有四个轮胎在相同和不同的压力下。通过模拟还验证了DYC策略的无偏估计结果和补偿效果。提出了一种车辆动力学和横向运动稳定性指数,以及驾驶员的转向工作量来量化轮胎压力变化和分布的影响。在仿真结果上分析表明:前轮胎和后轮胎上的压力降低分别引起大的转向角和大型车辆侧滑角;全轮胎充气压力减少将增加驾驶员的转向工作量。通过显着降低车辆侧滑角,方向盘角度,将驾驶员的转向工作量减少到90%,可以通过显着降低令人满意的补偿效果来实现令人满意的补偿效果。

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