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Fault Indexing Parameter Based Fault Detection in Induction Motor via MCSA with Wiener Filtering

机译:Wiener滤波通过MCSA的归索参数基于参数的基于参数的故障检测

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摘要

Fault detection in an induction motor, particularly at premature stage has become necessary to avoid unexpected damage in industrial process. In this paper, an approach to detect the early stage faults in induction machine using motor current signature analysis (MCSA) is presented. It is proposed to estimate the fault severity from stator current using noise cancelation by an adaptive filter (Wiener filter). Wavelet De-noising technique is implemented to reduce the effect of noise floor in noise canceled stator current. Different categories of bearing faults, broken rotor fault and stator inter turn faults in induction motor are estimated with and without de-nosing using pre-fault component cancelation (Noise cancelation). In addition, fault index based on standard deviation (SD) and simple square integral (SSI) value of noise canceled stator current are proposed. The proposed fault detection topology is examined using simulations and experiments on a 3HP, 1HP and 0.5HP induction motors for bearing, broken rotor and stator inter turn faults respectively.
机译:在感应电动机中的故障检测,特别是在早熟阶段,是必要的,以避免工业过程中意外损坏。本文介绍了一种使用电动机电流签名分析(MCSA)检测感应机中早期故障的方法。建议使用自适应滤波器(Wiener滤波器)使用噪声消除来估计来自定子电流的故障严重程度。小波去噪技术被实施以降低噪声底板在噪声消除定子电流中的效果。不同类别的轴承故障,断子故障和定子互连故障在感应电机中估计,并且使用预故障分量取消(噪声消除)而无脱模。此外,提出了基于标准偏差(SD)和简单方形积分(SSI)值的故障索引。使用模拟和实验在3HP,1HP和0.5HP的轴承,破碎的转子和定子互动故障中使用模拟和0.5HP的实验检查所提出的故障检测拓扑。

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