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Neural network-based sliding mode control of electronic throttle

机译:基于神经网络的电子节气门滑模控制

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摘要

A neural network-based sliding mode controller for an electronic throttle of an internal combustion engine is proposed. Electronic throttle is modeled as a linear system with uncertainties and affected by disturbances depending on the states of the system. The disturbances, consisting of an unknown friction and a torque caused by the dual spring mechanism inside the mechanical part of the throttle, are estimated by a neural network whose parameters are adapted on-line. The sliding mode controller and the parameters adaptation scheme are derived in order to achieve a tracking of a smooth reference signal, while preserving boundedness of all signals in the closed-loop system. Experimental results are presented which demonstrate the efficiency and robustness of the proposed control scheme.
机译:提出了一种基于神经网络的内燃机电子节气门滑模控制器。电子节气门建模为具有不确定性的线性系统,并受系统状态影响而受到干扰的影响。由神经网络估计其扰动,该扰动由节气门机械部分内部的双弹簧机构引起的未知摩擦和转矩组成,该神经网络的参数可进行在线调整。推导滑模控制器和参数自适应方案,以实现对平滑参考信号的跟踪,同时保持闭环系统中所有信号的有界性。实验结果表明了所提出的控制方案的效率和鲁棒性。

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