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Modulation signal bispectrum analysis of motor current signals for stator fault diagnosis

机译:电机电流信号的调制信号双频谱分析,用于定子故障诊断

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摘要

Induction motors are the most widely used electrical machines in industry. To diagnose any possible incipient faults, many techniques have been developed. Motor current signature analysis (MCSA) is a common practice in industry to find motor faults. However, because small modulations due to faults it is difficult to quantify it in the measured signals which predominates with supply frequency, higher order harmonics and noise. In this paper a modulation signal (MS) bispectrum is investigated to detect different severities of stator faults. It shows that MS bispectrum has the capability to accurately estimate modulation degrees and suppress the random and nonmodulation components. Test results show that MS bispectrum has a better performance in differentiating spectrum amplitudes due to stator faults and hence produces better diagnosis performance, compared with that of conventional power spectrum analysis.
机译:感应电动机是工业上使用最广泛的电机。为了诊断任何可能的初期故障,已经开发了许多技术。电动机电流签名分析(MCSA)是发现电动机故障的工业惯例。但是,由于故障引起的小调制,很难在以电源频率,高次谐波和噪声为主的被测信号中量化。本文研究了一种调制信号(MS)双谱,以检测定子故障的不同严重程度。结果表明,MS双谱具有准确估计调制度并抑制随机和非调制分量的能力。测试结果表明,与常规功率谱分析相比,MS双谱在区分定子故障引起的频谱幅度方面具有更好的性能,因此产生了更好的诊断性能。

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