Analytical Model of a Six-Phase PMSM for the Simulation of Stator Winding Faults on Turn Level

S. Foitzik, M. Doppelbauer
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引用次数: 1

Abstract

The major limitation of the lifetime and reliability of electrical machines are stator winding faults. Inter-turn faults are for that matter often the origin of more severe faults, which can lead to complete system failures. Particularly, three-phase permanent magnet synchronous machines (PMSMs) have significant drawbacks in terms of fault tolerant operation. In comparison, six-phase PMSMs are more complex to analyze and to operate, but for this reason, also offer greater possibilities for the control scheme during fault. This paper presents the first analytical machine model to investigate the behavior of six-phase PMSMs with stator winding faults on turn level. In order to keep the model compact, the levels of abstraction vary within the stator winding circuit. The machine model is acausally implemented, which allows the simulation with current sources and current controlled voltage sources. The simulation results of the presented model are compared with the simulation results of an equivalent finite element analysis model. The average torque differs between the two models in case of an inter-turn fault at nominal load operation by 0.3 %, the amplitude of the fault current differs by 3.3 % and the frequency spectra of the voltages show equal characteristics, while the computation time is 200 times faster with the analytical model. We use the developed model for the analysis of the machine behavior under stator winding faults relevant in practice. With the machine analysis's outcome, we are able to develop a more sophisticated fault management system, which enhances fault tolerant operation in comparison with three-phase PMSMs.
六相永磁同步电机定子绕组匝位故障仿真分析模型
制约电机寿命和可靠性的主要因素是定子绕组故障。匝间故障通常是更严重故障的起源,可能导致整个系统故障。特别是三相永磁同步电机在容错操作方面存在明显的缺陷。相比之下,六相永磁同步电动机的分析和操作更复杂,但由于这个原因,也为故障期间的控制方案提供了更大的可能性。本文提出了第一个分析电机模型,用于研究定子绕组在匝级上故障的六相永磁同步电机的行为。为了保持模型的紧凑性,定子绕组电路中的抽象层次各不相同。实际实现了电机模型,实现了电流源和电流控制电压源的仿真。将该模型的仿真结果与等效有限元分析模型的仿真结果进行了比较。在额定负荷工况下,当发生匝间故障时,两种模型的平均转矩相差0.3%,故障电流幅值相差3.3%,电压频谱表现出相同的特征,而解析模型的计算速度要快200倍。将所建立的模型应用于实际相关的定子绕组故障下的电机性能分析。根据机器分析的结果,我们能够开发出更复杂的故障管理系统,与三相永磁同步电动机相比,它提高了容错性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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