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Discrimination of stator winding turn fault and unbalanced supply voltage in permanent magnet synchronous motor using ANN

机译:永磁同步电动机定子绕组故障和不平衡电源电压的辨别

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摘要

Permanent magnet synchronous motor (PMSM) is currently the most attractive application electric machine for several industrial applications. It has obtained widespread application in motor drives in recent time. However, different types of faults are unavoidable in such motors. This paper focuses on stator winding faults diagnosis. This paper proposes the ratio of third harmonic to fundamental FFT magnitude component of the three-phase stator line current and supply voltage as a parameter for detecting stator winding turn faults under different load conditions and using artificial neural network (ANN). Discrimination among unbalancing of supply voltage conditions and stator turn short circuit poses a challenge that is addressed in this paper. The presented approach yields a high degree of accuracy in fault detection and diagnosis between the effects of stator winding turn fault and those due to unbalanced supply voltages using artificial neural network. All simulations in this paper are conducted using finite element analysis software.
机译:永磁同步电动机(PMSM)目前是几款工业应用最具吸引力的电机。它在近时在电机驱动器中获得了广泛的应用。然而,在这种电动机中,不同类型的故障是不可避免的。本文侧重于定子绕组故障诊断。本文提出了三相定子线电流和电源电压基本FFT幅度分量的三相谐波与基本FFT幅度分量的比率,作为用于在不同负载条件下检测定子绕组故障和使用人工神经网络(ANN)的参数。供应电压条件和定子转动短路不平衡之间的歧视构成了本文所寻求的挑战。本方法在定子绕组故障和由于使用人工神经网络的不平衡电压而导致的效果,在故障检测和诊断中产生高精度。本文的所有模拟都是使用有限元分析软件进行的。

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