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Robust Gear Shifting Force Control of a Solenoid Actuator in an Automated Manual Transmission of an Electric Vehicle via µ-Synthesis

机译:电动汽车自动手动变速箱中通过μ合成的电磁执行器鲁棒变速控制

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This paper proposes a multi-physics approach to the force control of an electromagnetic solenoid system utilized to perform the gear shifting in an electric vehicle equipped with an automated manual transmission. Considering different operating conditions of the electric vehicles, the operating temperature of the gear shifting system varies on the time scales of minutes, hours, days and seasons. Such a temperature variation affects the performance of the gear shifting process in electric vehicles which are equipped with automated manual transmissions and causes a considerable uncertainty in the dynamical behavior of the gear shifting system. The aim of the present study is to develop a control strategy to perform an efficient gear shifting in different operating temperatures. To this end, a coupled thermal-electromagnetic modeling approach is followed to identify the uncertainty model and to model the perturbed systems. The accuracy of the obtained uncertainty model is verified by a set of experiments. Knowing the perturbed systems, the μ- synthesis robust control technique is employed to design a robust closed-loop force control system which ensures a satisfactory gear shifting over the entire range of operating temperatures. The simulation results validate the robustness, performance, and stability criteria.
机译:本文提出了一种多物理场方法来对电磁螺线管系统的力进行控制,该电磁螺线管系统用于在配备有自动手动变速器的电动汽车中执行变速。考虑到电动车辆的不同工作条件,变速系统的工作温度在分钟,小时,天和季节的时间尺度上变化。这样的温度变化影响装备有自动手动变速器的电动车辆中的变速过程的性能,并且在变速系统的动力学行为中引起相当大的不确定性。本研究的目的是开发一种控制策略,以在不同的工作温度下进行有效的换档。为此,遵循耦合热电磁建模方法来识别不确定性模型并为扰动系统建模。通过一组实验验证了所获得不确定性模型的准确性。知道受扰动的系统后,可使用μ综合鲁棒控制技术来设计鲁棒的闭环力控制系统,以确保在整个工作温度范围内都能令人满意地进行换档。仿真结果验证了鲁棒性,性能和稳定性标准。

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