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Design and Validation of a Gain-Scheduled Controller for the Electronic Throttle Body in Ride-by-Wire Racing Motorcycles

机译:线控赛车摩托车电子节气门增益调度控制器的设计与验证

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This paper presents the analysis, design and validation of a gain-scheduled controller for an electronic throttle body (ETB) designed for ride-by-wire applications in racing motorcycles. Specifically, the open-loop dynamics of the system are studied in detail discussing the effects of friction based on appropriate experiments. Further, a linear time invariant nominal model of the system to be controlled is experimentally identified via a frequency-domain black box approach, together with the uncertainty bounds on the model parameters. Based on these results a model-based gain-scheduled proportional-integral-differential (PID) controller for throttle position tracking is proposed. The closed-loop stability of the resulting linear parametrically varying (LPV) system is proved by checking the feasibility of an appropriate linear matrix inequality (LMI) problem, and the state space representation of the closed-loop LPV system is experimentally validated. Finally, the performance of the controlled system is compared to the intrinsic limit of the actuator and tested under realistic use, namely both on a test-bench employing as set-point the throttle position recorded during test-track experiments and on an instrumented motorcycle.
机译:本文介绍了一种用于电子节气门体(ETB)的增益预定控制器的分析,设计和验证,该节气门体设计用于赛车摩托车的线控应用。具体而言,在适当的实验基础上详细研究了系统的开环动力学,并讨论了摩擦的影响。此外,通过频域黑盒方法以及模型参数上的不确定性边界,通过实验确定了要控制的系统的线性时不变标称模型。基于这些结果,提出了基于模型的增益调度比例积分微分(PID)控制器,用于油门位置跟踪。通过检查适当的线性矩阵不等式(LMI)问题的可行性,证明了所得线性参数可变(LPV)系统的闭环稳定性,并通过实验验证了闭环LPV系统的状态空间表示。最后,将受控系统的性能与执行器的固有极限进行比较,并在实际使用下进行测试,即在以测试轨迹实验中记录的节气门位置作为设定点的测试台上以及在仪表摩托车上进行测试。

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