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Diagnosis of normal and abnormal operations of induction motors in ASDs by a coupled finite element-network technique.

机译:通过耦合有限元网络技术诊断ASD中感应电动机的正常和异常运行。

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摘要

Non-invasive diagnosis of abnormal/faulty rotor conditions of broken bars, broken end-ring connectors as well as static and dynamic airgap eccentricities in squirrel-cage induction motors in Adjustable Speed Drives (ASDs) is a well-known problem that still warrants further investigations. In this regard, there are several important issues that need to be addressed with respect to improvement of the reliability of a drive's condition monitoring and diagnostics.; One of these issues is that at present an historical record of performance of a drive or motor is required to detect an increase in the severity of these abnormal conditions. In recognition of these facts, the possibility of future application of numerical model-based predictive techniques, which have the potential for enhanced accuracy and consistency, is increasingly becoming attractive and desirable.; Analyses and diagnoses of these various abnormal conditions by use of present techniques as reported in the literature have been restricted, by and large, to the identification of the fundamental component and its sidebands in the frequency spectra of the motor time-domain line current waveforms. Relying on the identification of these sideband frequency components to detect these various abnormalities leaves something to be desired with regard to specific diagnosis of, and differentiation between, broken bars/connectors and airgap eccentricities.; A review of present model-based predictive techniques reported in the literature indicates that more attention and emphasis have been directed almost exclusively to the studies of effects of these various abnormalities on the frequency contents of motor line current signatures. To the knowledge of this author, very little attention, if any, has been given to the need for rigorous and detailed representation of important second-order effects, such as electrical and magnetic unbalances and their consequent effects on motor parameters, that inherently occur in these machines as a result of these abnormalities. Such phenomena need to be rigorously incorporated into model-based predictive techniques because they have serious implications on motor diagnostics.; Accordingly, in this dissertation a new numerical model is presented that addresses the majority of the issues elucidated above, for rigorous analysis and more comprehensive non-invasive model-based predictive diagnosis of the above-mentioned rotor abnormalities. The potential application of this modeling technique reported here as a powerful diagnostic tool for database generation in identifying the occurrence of, and differentiating between, various faults by monitoring several frequency components in the frequency spectra of measurable and/or computable motor input/output quantities are thoroughly demonstrated via computer simulations in this dissertation. (Abstract shortened by UMI.)
机译:可调节驱动器(ASD)中鼠笼式感应电动机中断条,端环连接器破损以及鼠笼式感应电动机的静态和动态气隙偏心率的异常/故障转子状况的非侵入式诊断是一个众所周知的问题,仍需进一步研究调查。在这方面,在改善驱动器状态监视和诊断的可靠性方面,有几个重要的问题需要解决。这些问题之一是,目前需要驱动器或电动机的性能历史记录来检测这些异常情况的严重性增加。认识到这些事实,未来应用基于数值模型的预测技术的可能性越来越具有吸引力,并且这种可能性具有增强的准确性和一致性的潜力。使用文献中报道的当前技术对这些各种异常情况的分析和诊断在很大程度上已局限于识别电动机时域线电流波形的频谱中的基本成分及其边带。依靠对这些边带频率分量的识别来检测这些各种异常,在断条/连接器的破损和气隙偏心率的具体诊断和区别方面尚需改进。对文献中报道的当前基于模型的预测技术的回顾表明,更多的关注和强调几乎专门针对这些各种异常对电机线路电流信号的频率内容的影响的研究。就本文作者所知,很少有必要对重要的二次效应(例如电和磁不平衡及其对电动机参数的后续影响)进行严格而详细的表示(如果有的话)。这些机器是这些异常的结果。这种现象必须严格地纳入基于模型的预测技术中,因为它们对运动诊断有严重的影响。因此,在本论文中,提出了一个新的数值模型,该模型解决了上面阐明的大多数问题,以对上述转子异常进行严格的分析和更全面的基于非侵入性模型的预测诊断。这里报道的这种建模技术作为数据库生成的强大诊断工具的潜在应用是通过监视可测量和/或可计算的电动机输入/输出量频谱中的几个频率分量来识别各种故障的发生和区分各种故障。本文通过计算机仿真进行了充分证明。 (摘要由UMI缩短。)

著录项

  • 作者

    Bangura, John Fayia.;

  • 作者单位

    Marquette University.;

  • 授予单位 Marquette University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 352 p.
  • 总页数 352
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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