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Application of neural network in suppressing mechanical vibration of a permanent magnet linear motor

机译:神经网络在抑制永磁直线电机机械振动中的应用

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摘要

In this study, a recurrent neural network compensator for suppressing mechanical vibration in a permanent magnet linear synchronous motor (PMLSM) is studied. The linear motor is controlled by a conventional PI velocity controller, and the vibration of the flexible mechanism is suppressed by using a hybrid recurrent neural network. The differential evolution strategy and Kalman filter method are used to avoid the local minimum problem, and estimate the states of system, respectively. The proposed control method is firstly designed by using a nonlinear simulation model built in Matlab Simulink and then implemented in a practical test rig. The proposed method works satisfactorily and suppresses the vibration successfully.
机译:在这项研究中,研究了一种用于抑制永磁直线同步电动机(PMLSM)中机械振动的递归神经网络补偿器。线性电动机由常规的PI速度控制器控制,并且通过使用混合递归神经网络来抑制柔性机构的振动。差分进化策略和卡尔曼滤波方法分别用于避免局部极小问题和估计系统状态。首先通过使用Matlab Simulink中建立的非线性仿真模型设计提出的控制方法,然后在实际的测试平台中实现。所提出的方法令人满意地工作并且成功地抑制了振动。

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