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Single-Turn Fault Detection in Induction Machine Using Complex-Wavelet-Based Method

机译:基于复小波的异步电机单匝故障检测

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摘要

Interturn short circuit is often confused with voltage imbalance in induction machines. Therefore, detection and classification of single-turn fault (TF) are becoming important in the presence of voltage imbalances, under various loading conditions. Substantial studies are conducted on the interturn fault detection, but a comprehensive method for classifying the faults at different operating points of the machine, under varying supply conditions, is still a challenge. This is a critical problem in industries since the induction motors form the major workhorses. The artificial-intelligence-based techniques are advanced methods in fault monitoring. This, when combined with optimization techniques, is expected to give improved and accurate results with minimum false alarms. In this paper, a technique is developed, based on recent developments in the wavelet-based analysis, particularly in the complex wavelet domain. The support vector machines are adopted for comparing the classification accuracy obtained using complex-wavelet- and standard discrete-wavelet-based methods. The receiver operating characteristic curves indicate that the fault detection, down to single turn, is feasible using a single current sensor.
机译:匝间短路通常与感应电机中的电压不平衡混淆。因此,在各种负载条件下,存在电压不平衡的情况下,单匝故障(TF)的检测和分类变得越来越重要。对匝间故障检测进行了大量的研究,但是要在不同的供电条件下对机器不同工作点的故障进行分类的综合方法仍然是一个挑战。由于感应电动机是主要动力,因此这在工业中是一个关键问题。基于人工智能的技术是故障监视中的高级方法。当与优化技术结合使用时,可以在减少误报的情况下提高结果的准确性。本文基于基于小波分析的最新发展,特别是在复杂小波域中,开发了一种技术。采用支持向量机比较使用复杂小波和标准离散小波方法获得的分类精度。接收器的工作特性曲线表明,使用单个电流传感器进行低至单匝的故障检测是可行的。

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