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Adaptive fuzzy discrete-time fault-tolerant control for permanent magnet synchronous motors based on dynamic surface technology

机译:基于动态表面技术的永磁同步电动机自适应模糊离散 - 容错控制

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摘要

The discrete-time fault-tolerant control method for permanent magnet synchronous motors (PMSMs) is investigated for the first time in this paper based on adaptive fuzzy theory, where the designed controllers consider faults containing both loss of effectiveness and bias. Firstly, with the help of Euler method, the discrete-time model of PMSMs is obtained. Secondly, adaptive fuzzy theory is used to realize fault-tolerant control of PMSMs. Next, dynamic surface control is used to resolve the problems of "explosion of complexity" and noncausal in discrete-time systems caused by backstepping. It is proved that the proposed method can guarantee all signals and states in the closed-loop system are semi-global uniform ultimate bounded when the faults occur and the position tracking error can converge to a small neighborhood of the origin. Finally, simulation results show that the proposed control method has strong fault-tolerant performance and robustness. (C) 2020 Elsevier B.V. All rights reserved.
机译:基于自适应模糊理论,本文首次研究了永磁同步电动机(PMSMS)的离散时间容错控制方法,其中设计的控制器考虑了包含效力和偏置损失的故障。首先,在欧拉方法的帮助下,获得了PMSMS的离散时间模型。其次,使用自适应模糊理论用于实现PMSMS的容错控制。接下来,使用动态表面控制来解决由BackStepping引起的离散时间系统中“复杂性爆炸”和非共轨的问题。事实证明,当故障发生时,所提出的方法可以保证闭环系统中的所有信号和状态是半全局均匀终极界限,并且位置跟踪误差可以收敛到原点的小邻域。最后,仿真结果表明,该控制方法具有强大的容错性能和鲁棒性。 (c)2020 Elsevier B.v.保留所有权利。

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