Wavelet neural network based fault diagnosis of asynchronous motor

Bo Hu, W. Tao, Bo Cui, Yi-tong Bai, Xu Yin
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引用次数: 3

Abstract

According to asynchronous motor's complex fault characteristics, and the combination of wavelet transform technique, an improved wavelet neural network for fault diagnosis of asynchronous motor is proposed in this paper. Taking Wavelet transform technique as wavelet neural network(WNN) the input vector of picking up asynchronous motor's the characteristic signal, and wavelet neural network algorithm is ptimized, The self-adaptive wavelet neural network algorithm about adjusting momentum vector alter-learning rate is proposed and given the momentum coefficient and alter-learning rate adjustment method. Through the actual testified results show that the method is effective and feasible, and has a better diagnostic accuracy, fast and generalized performances.
基于小波神经网络的异步电动机故障诊断
针对异步电动机复杂的故障特点,结合小波变换技术,提出了一种改进的小波神经网络用于异步电动机故障诊断的方法。以小波变换技术作为小波神经网络(WNN)提取异步电动机特征信号的输入向量,对小波神经网络算法进行了优化,提出了自适应小波神经网络动量矢量变学习率的调整算法,并给出了动量系数和变学习率的调整方法。通过实际验证结果表明,该方法是有效可行的,具有较好的诊断精度、快速和泛化性能。
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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