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Investigation of Key Factors Influencing the Response of Permanent Magnet Synchronous Machines to Three-Phase Symmetrical Short-Circuit Faults

机译:影响永磁同步电机对三相对称短路故障响应的关键因素研究

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摘要

This paper investigates the three-phase symmetrical short-circuit (SSC) characteristics of a permanent magnet synchronous machine (PMSM). Closed-form solutions are derived to predict both the steady-state and transient response of a PMSM to three-phase SSC faults. The developed expressions account for the impact of prefault operating conditions and include provisions for incorporating magnetic saturation effects. The influences of machine parameters and prefault operating conditions are studied to identify the key factors that have a major influence on the steady-state and peak transient values of the fault currents. It is shown that higher machine characteristic current values, reduced stator resistance, higher q-axis prefault current, and higher magnetic saturation all increase the peak transient value of the demagnetizing d-axis current. Time-stepped finite element (FE) simulation is performed to investigate the rotor demagnetization characteristics of PMSMs under SSC fault conditions. Both two-dimensional (2-D) and three-dimensional (3-D) FE simulations are used to build confidence in the fault current predictions of the developed analytical model, accompanied by experimental verification.
机译:本文研究了永磁同步电机(PMSM)的三相对称短路(SSC)特性。得出封闭形式的解决方案,以预测PMSM对三相SSC故障的稳态和瞬态响应。所开发的表达式考虑了故障前操作条件的影响,并包括了合并磁饱和效应的规定。研究了机器参数和故障前运行条件的影响,以确定对故障电流的稳态和峰值瞬态值有重大影响的关键因素。结果表明,较高的电机特征电流值,减小的定子电阻,较高的q轴预故障电流和较高的磁饱和度均会增加去磁d轴电流的峰值瞬态值。进行了时间步进有限元(FE)仿真,以研究SSC故障条件下PMSM的转子退磁特性。二维(2-D)和三维(3-D)有限元仿真均用于建立对开发的分析模型的故障电流预测的信心,并进行实验验证。

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