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Open-Circuit Fault-Tolerant Control of Five-Phase PM Machine Based on Reconfiguring Maximum Round Magnetomotive Force

机译:基于最大圆磁通势重构的五相永磁电机开路容错控制

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摘要

This paper investigates the open-circuit fault-tolerant current control for a five-phase fault-tolerant permanent-magnet (PM) machine used for electric vehicles. By relieving the common constraint of zero neutral point current in the existing fault-tolerant control strategies and reconfiguring the maximum round rotating magnetomotive force under different fault conditions, the new current sets, which enable the five-phase PM machine to output the maximum smooth torque, are obtained by the analytical method. Compared with the existing fault-tolerant control strategy, larger torque and lower torque ripple can be obtained with the proposed fault-tolerant control strategy, and the five-phase PM machine can safely operate with the loss of up to three phase windings. The proposed fault-tolerant control strategy is verified by both finite-element analysis and experimental results. The developed fault-tolerant current control strategy can be generalized into any multiphase PM machines.
机译:本文研究了用于电动汽车的五相容错永磁(PM)机器的开路容错电流控制。通过消除现有容错控制策略中零中性点电流的共同约束并重新配置不同故障条件下的最大圆形旋转磁通势,新的电流设置使五相永磁电机能够输出最大平滑转矩通过分析方法获得。与现有的容错控制策略相比,所提出的容错控制策略可以获得更大的转矩和更低的转矩脉动,并且五相永磁电机可以安全地运行,并且最多损失三相绕组。通过有限元分析和实验结果验证了所提出的容错控制策略。可以将开发的容错电流控制策略推广到任何多相永磁电机中。

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