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Pressure control of an electro-hydraulic actuated clutch via novel hysteresis model

机译:通过新型磁滞模型控制电动液压致动离合器的压力

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This paper mainly focuses on the development of pressure tracking control logic of electro-hydraulic actuators for vehicle application. This is done to improve and ensure the performance of a precise lower-level controller for evolving modern shift control logic. The required performance is obtained by hysteresis model-based feed-forward control and additional feedback control. The hysteresis and the time delay, which adversely affect pressure control, are well known nonlinear behaviors in electro-hydraulic actuators. In order to cope with the hysteresis, a novel hysteresis model is proposed based on a physical phenomenon. A mathematical model based on a characteristic curve obtained in preliminary experiments is presented using only one tuning parameter, and this model can be inverted easily to construct a feed-forward controller. In addition, a feedback controller is designed considering the stability margin of a time delay system. The feedback control inputs ensure compensation of the feed-forward errors caused by model error and uncertainty. The proposed controller is designed to lower computational cost considering applicability for production vehicles. As a result, the developed pressure controller is applied to a transmission control unit of a production vehicle and verified experimentally for various driving scenarios.
机译:本文主要着眼于车辆用电动液压执行器的压力跟踪控制逻辑的发展。这样做是为了改善和确保用于发展现代变速控制逻辑的精确的低级控制器的性能。通过基于磁滞模型的前馈控制和附加反馈控制可获得所需的性能。滞后和时间延迟对压力控制产生不利影响,是电动液压执行器中众所周知的非线性行为。为了应对磁滞现象,提出了一种基于物理现象的新型磁滞模型。仅使用一个调整参数就可以提供基于在初步实验中获得的特性曲线的数学模型,并且可以轻松地反转该模型以构建前馈控制器。另外,设计了一种考虑时滞系统稳定性的反馈控制器。反馈控制输入确保补偿由模型误差和不确定性引起的前馈误差。考虑到对生产车辆的适用性,提出的控制器旨在降低计算成本。结果,将开发的压力控制器应用于生产车辆的变速箱控制单元,并针对各种驾驶场景进行了实验验证。

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