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Study on Requirements for Load Emulation of the Vehicle With an Electric Braking System

机译:电动制动系统对车辆载荷仿真的要求研究

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For different configurations of the electric braking systems (EBS) in the vehicle, requirements for the emulation of their dynamic load on the test bench are studied in this paper, in order to determine appropriate parameters of the test equipment. First, models of three kinds of EBS as well as the test bench are built and characteristics of the transmission system including elasticity and backlash nonlinearity with their influences on the braking performance are fully considered. Two normal braking strategies, namely the maximum-motor-torque strategy and the good-pedal-feel strategy, are designed and the antilock braking strategy that includes the regenerative and friction blended torque control of the wheel slip ratio, the sliding mode control of the backlash, and the PID closed-loop control for elasticity compensation in the emergency condition is proposed. With these methods, motor and frictional braking torque are under the coordinated control to make the most of the EBS. Then, the scheme and control methods of load emulation including the PI method and the feedforward method on the test bench are put forward. Based on the models and control methods, vehicle braking results that indicate the emulation effects and requirements of different kinds of EBS in the MATLAB/Simulink environment are shown; and meanwhile, the dynamic performance parameters of the test bench containing the moment of inertia and the time constant of torque response are obtained for the selection of the test equipment. Finally, experiments on the real bench are carried out. The loading and motion of the vehicle EBS under various braking conditions can be accurately emulated on the proposed test bench and the reliable test results make it possible to investigate the EBS safely, economically, and time-efficiently in the laboratory.
机译:针对车辆中电子制动系统(EBS)的不同配置,本文研究了在测试台上模拟其动态负载的要求,以便确定测试设备的适当参数。首先,建立了三种EBS模型以及测试平台,并充分考虑了传动系统的特性,包括弹性和间隙非线性,以及它们对制动性能的影响。设计了两种正常制动策略,即最大电动机转矩策略和良好踏板感觉策略,防抱死制动策略包括车轮滑移率的再生和摩擦混合转矩控制,变速箱的滑模控制。提出了反向间隙,提出了在紧急情况下进行弹性补偿的PID闭环控制。通过这些方法,可以在电动机和摩擦制动转矩的共同控制下充分利用EBS。然后,提出了在试验台上采用PI方法和前馈方法进行负荷仿真的方案和控制方法。根据模型和控制方法,显示了车辆制动结果,该结果表明了在MATLAB / Simulink环境中不同EBS的仿真效果和要求;同时,获得了包含惯性矩和转矩响应时间常数的试验台动态性能参数,以供选择试验设备。最后,在实际工作台上进行了实验。可以在建议的测试台上准确模拟各种制动条件下车辆EBS的负载和运动,可靠的测试结果可以在实验室中安全,经济和高效地研究EBS。

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