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Condition Monitoring of Induction Motors Using Wavelet Based Analysis of Vibration Signals

机译:基于小波分析的振动信号对异步电动机的状态监测

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摘要

Condition monitoring of machines has its roots in the human ECG analysis for detecting cardiac arrhythmias. Condition monitoring in industry is desirable for increasing machinery availability, reducing consequential damage, and improving the operational efficiency. This is very significant inindustries that use heavy duty machines for various processes. A monstrous three-phase AC induction motor to drive a city water supply pump or very big, high power motors used in mills, huge generators forgenerating power in hydel plants etc. depict a few of them. Also, for safety and economic considerations, there is a need to monitor the behavior of motors working in critical production processes as well. This paper demonstrates how the condition of an induction motor can be monitored by the analysis of the acoustic signal that represents the non-stationary vibration data. The analysis has been done using various signal processing algorithms and a robust fault detection scheme has been developed using the PSD (Power Spectral Density) concept in Wavelet Decomposition.
机译:机器的状态监视起源于用于检测心脏心律不齐的人心电图分析。工业中的状态监视对于提高机械可用性,减少后续损失并提高操作效率是理想的。这是将重型机器用于各种过程的非常重要的行业。用于驱动城市供水泵的巨大的三相交流感应电动机或用于工厂的超大型高功率电动机,用于在海德尔工厂中发电的大型发电机等。另外,出于安全和经济考虑,还需要监视在关键生产过程中工作的电动机的行为。本文演示了如何通过分析代表非平稳振动数据的声信号来监视感应电动机的状态。使用各种信号处理算法进行了分析,并使用小波分解中的PSD(功率谱密度)概念开发了鲁棒的故障检测方案。

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