基于BQGA和电流谐波注入的开路故障永磁电机转矩性能优化

Xiaqing Pei, Peijuan Cui, Chunyi Wang, Zaiping Zheng
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引用次数: 0

摘要

永磁同步电动机在发生单相开路故障时,会出现平均转矩减小、转矩脉动明显增大的问题,进而影响包括电机在内的整个系统的可靠性和安全性。同时,对于航空航天领域的永磁同步电机,在故障时仅根据转矩分析模型对其转矩性能进行优化具有很大的挑战性,也难以达到令人满意的精度。本文将基于Bloch坐标的量子遗传算法(BQGA)与三维有限元法(3DFEM)相结合,提出了在单相断路故障发生时向剩余正相注入谐波电流的策略,以优化转矩性能。结果表明,该方法能显著减小电机在开路故障状态下的转矩脉动,但对电机的平均转矩影响较小。同时,由于该方法对电机内部机构分析的依赖程度较低,可以在其他故障容易发生的情况下进行迁移,优化电机性能,对包括该电机在内的系统的容错控制具有指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Torque Performance Optimization of Permanent Magnet Motor with Open Circuit Fault Based on BQGA and Current Harmonic Injection
Permanent magnet synchronous motor (PMSM) would occur the problem that the average torque decreases and the torque ripple increases significantly while single-phase open circuit fault occurring, which would affect the reliability and safety of the system including the motor furtherly. Simultaneously, for the PMSM in the field of aerospace, it is quite challenging to optimize the torque performance only according to the torque analytical model while it is in fault, and the satisfactory accuracy is also difficult to be achieved. In this paper, the Quantum genetic algorithm based on Bloch coordinates (BQGA) and three-dimensional finite element method (3DFEM) are combined and the strategy of injecting harmonic current into the remaining normal phase is proposed to optimize the torque performance while single-phase open circuit fault occurring. The result shows that this method could reduce the torque ripple significantly at the expense of reducing little average torque while the motor is in open circuit fault condition. Concurrently, because less dependence on the internal mechanism analysis of the motor, this method could be migrated to optimize the motor performance while other faults occurring conveniently and thus it has the guiding significance for the fault tolerant control of the system including this motor.
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