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首页> 外文期刊>IEEE Transactions on Power Electronics >Investigation of Vibration Signatures for Multiple Fault Diagnosis in Variable Frequency Drives Using Complex Wavelets
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Investigation of Vibration Signatures for Multiple Fault Diagnosis in Variable Frequency Drives Using Complex Wavelets

机译:使用复数小波的变频驱动器多重故障诊断的振动特征研究

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摘要

Embedded variable frequency induction motor drives are now an integral part of any industry due to their improved speed regulation and fast dynamic response. Hence, their diagnosis becomes vital to avoid downtimes and economic losses. In this paper, a technique based on a recent enhancement on wavelets, known as complex wavelets, is proposed for identifying multiple faults in vector controlled induction motor drives (VCIMDs). Radial, axial, and tangential vibrations are analyzed for diagnostic purpose. Initially, a relatively simple thresholding based method is investigated for feasibility of diagnosis under variable frequency and load conditions. In the second part, the feature extraction and classifier modeling are discussed, in which the nearly shift-invariant complex wavelet based model is compared with the discrete wavelet transform (DWT) for its applicability in detecting multiple faults. The fault conditions considered here are the most prominent ones such as interturn fault, interturn fault under progression, and bearing damage. Comparable performances of support vector machine (SVM) based models and simple technique based on $k$-nearest neighbor $(k$-NN) show the importance of efficient representation of input space by analytical wavelet based feature extraction. The performance indexes show the applicability of the scheme for industrial drives under variable frequencies and load conditions.
机译:嵌入式变频感应电动机驱动器由于其改进的速度调节和快速的动态响应,现已成为任何行业不可或缺的一部分。因此,对它们的诊断对于避免停机和经济损失至关重要。在本文中,提出了一种基于最近对小波增强的技术,称为复数小波,用于识别矢量控制感应电动机驱动器(VCIMD)中的多个故障。分析径向,轴向和切向振动以进行诊断。最初,研究了一种相对简单的基于阈值的方法,用于在可变频率和负载条件下进行诊断的可行性。在第二部分中,讨论了特征提取和分类器建模,其中将基于近移不变复数小波的模型与离散小波变换(DWT)进行了比较,以证明其在检测多个故障中的适用性。这里考虑的故障条件是最突出的故障条件,例如匝间故障,进行中的匝间故障和轴承损坏。基于支持向量机(SVM)的模型和基于 $ k $ -最近邻居 $(k $ -NN)显示了通过基于分析小波的特征提取有效表示输入空间的重要性。性能指标显示了该方案在可变频率和负载条件下对工业驱动器的适用性。

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