Unsupervised deviation detection by GMM — A simulation study

M. Svensson, T. Rognvaldsson, S. Byttner, M. West, B. Andersson
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引用次数: 5

Abstract

A new approach to improve fault detection of electrical machines is proposed. The increased usage of electrical machines and the higher demands on their availability requires new approaches to fault detection. In this paper we demonstrate that it is possible to detect a certain fault on a PMSM (Permanent Magnet Synchronous Machine) by using multiple similar motors, or a single motor, to build a norm of expected behavior by monitoring signal relations. This means that the machine is monitored in an unsupervised way. Four levels of an increased temperature in the rotor magnets have been investigated. The results are based on simulations and the signals used (for relation measurements) are available in a real motor installation. The method shows promising results in detecting two of the temperature faults.
基于GMM的无监督偏差检测——仿真研究
提出了一种改进电机故障检测的新方法。电机使用量的增加和对其可用性的更高要求需要新的故障检测方法。在本文中,我们证明了可以通过使用多个相似的电机或单个电机来检测PMSM(永磁同步电机)上的某个故障,并通过监测信号关系来建立期望行为的规范。这意味着机器以一种无监督的方式被监控。研究了转子磁体温度升高的四个水平。结果是基于模拟和使用的信号(用于关系测量)可在一个真实的电机安装。该方法在两个温度故障的检测中显示出良好的效果。
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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