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Cooperative Control of Regenerative Braking and Antilock Braking for a Hybrid Electric Vehicle

机译:混合动力汽车再生制动与防抱死制动的协同控制

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摘要

A new cooperative braking control strategy (CBCS) is proposed for a parallel hybrid electric vehicle (HEV) with both a regenerative braking system and an antilock braking system (ABS) to achieve improved braking performance and energy regeneration. The braking system of the vehicle is based on a new method of HEV braking torque distribution that makes the antilock braking system work together with the regenerative braking system harmoniously. In the cooperative braking control strategy, a sliding mode controller (SMC) for ABS is designed to maintain the wheel slip within an optimal range by adjusting the hydraulic braking torque continuously; to reduce the chattering in SMC, a boundary-layer method with moderate tuning of a saturation function is also investigated; based on the wheel slip ratio, battery state of charge (SOC), and the motor speed, a fuzzy logic control strategy (FLC) is applied to adjust the regenerative braking torque dynamically. In order to evaluate the performance of the cooperative braking control strategy, the braking system model of a hybrid electric vehicle is built in MATLAB/SIMULINK. It is found from the simulation that the cooperative braking control strategy suggested in this paper provides satisfactory braking performance, passenger comfort, and high regenerative efficiency.
机译:针对具有再生制动系统和防抱死制动系统(ABS)的并联混合动力电动汽车(HEV),提出了一种新的协作制动控制策略(CBCS),以实现改善的制动性能和能量再生。车辆的制动系统基于HEV制动扭矩分配的新方法,该方法使防抱死制动系统与再生制动系统和谐地协同工作。在协作制动控制策略中,ABS的滑模控制器(SMC)被设计为通过连续调节液压制动扭矩将车轮打滑保持在最佳范围内。为了减少SMC中的颤动,还研究了对饱和函数进行适度调整的边界层方法。根据车轮滑移率,电池充电状态(SOC)和电动机速度,应用模糊逻辑控制策略(FLC)动态调整再生制动扭矩。为了评估协同制动控制策略的性能,在MATLAB / SIMULINK中构建了混合动力电动汽车的制动系统模型。通过仿真发现,本文提出的协同制动控制策略提供了令人满意的制动性能,乘客舒适度和较高的再生效率。

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  • 来源
    《Mathematical Problems in Engineering》 |2013年第14期|890427.1-890427.9|共9页
  • 作者

    Guodong Yin; Xianjian Jin;

  • 作者单位

    School of Mechanical Engineering, Southeast University, Nanjing 211189, China,State Key Laboratory of Mechanical Transmission, Chongqing University, Chongqing 400044, China;

    School of Mechanical Engineering, Southeast University, Nanjing 211189, China;

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