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Determination of current waveforms for torque ripple minimisation in switched reluctance motors using iterative learning: an investigation

机译:使用迭代学习确定用于开关磁阻电机的转矩脉动最小化的电流波形:研究

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The paper deals with the investigations on an iterative learning approach to determine the desired current waveforms for switched reluctance motors, which give rise to ripple-free torque. The current waveforms are generated by repeated corrections from iteration to iteration starting from the conventional rectangular pulse profile as the initial waveform. The scheme requires much less a priori knowledge of the magnetic characteristics of the motor. The algorithms have been formulated for both one-phase-on and two-phase-on schemes, for a four-phase switched reluctance motor, in the light of the principles behind iterative learning. Based on the observations from the simulation results of these schemes, a modified scheme has been proposed by incorporating a suitable commutation process, often called torque sharing functions, in order to generate reasonably smooth current waveforms for the ease of tracking by the stator circuit of the motor. The performances of all the proposed schemes have been verified by computer simulation.
机译:本文涉及对迭代学习方法的研究,以确定用于开关磁阻电动机的所需电流波形,这会产生无脉动的转矩。通过从常规矩形脉冲轮廓作为初始波形开始的迭代到迭代的反复校正来生成电流波形。该方案需要更少的电动机磁特性的先验知识。根据迭代学习背后的原理,已经针对四相开关磁阻电动机针对单相接通方案和两相接通方案制定了算法。基于对这些方案的仿真结果的观察结果,提出了一种改进方案,该方案通过合并适当的换向过程(通常称为转矩共享函数),以生成合理的平滑电流波形,从而易于通过定子电路进行跟踪。发动机。通过计算机仿真验证了所有提出的方案的性能。

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