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Methodology for fault detection in induction motors via sound and vibration signals

机译:通过声音和振动信号检测感应电动机故障的方法

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摘要

Nowadays, timely maintenance of electric motors is vital to keep up the complex processes of industrial production. There are currently a variety of methodologies for fault diagnosis. Usually, the diagnosis is performed by analyzing current signals at a steady-state motor operation or during a start-up transient. This method is known as motor current signature analysis, which identifies frequencies associated with faults in the frequency domain or by the time-frequency decomposition of the current signals. Fault identification may also be possible by analyzing acoustic sound and vibration signals, which is useful because sometimes this information is the only available. The contribution of this work is a methodology for detecting faults in induction motors in steady-state operation based on the analysis of acoustic sound and vibration signals. This proposed approach uses the Complete Ensemble Empirical Mode Decomposition for decomposing the signal into several intrinsic mode functions. Subsequently, the frequency marginal of the Gabor representation is calculated to obtain the spectral content of the IMF in the frequency domain. This proposal provides good fault de-tectability results compared to other published works in addition to the identification of more frequencies associated with the faults. The faults diagnosed in this work are two broken rotor bars, mechanical unbalance and bearing defects.
机译:如今,及时维护电动机对于保持工业生产的复杂过程至关重要。当前存在多种用于故障诊断的方法。通常,通过分析稳态电动机运行时或启动瞬态期间的电流信号来执行诊断。这种方法称为电动机电流信号分析,它可以识别频域中与故障相关的频率或通过电流信号的时频分解来识别。通过分析声音和振动信号也可以进行故障识别,这很有用,因为有时此信息是唯一可用的。这项工作的贡献是一种基于对声音和振动信号的分析来检测稳态运行中感应电动机故障的方法。此提议的方法使用完整的集成经验模式分解将信号分解为几个固有模式函数。随后,计算Gabor表示的频率边界,以获取IMF在频域中的频谱内容。与其他已发表的著作相比,该提议除了提供与故障相关的更多频率之外,还提供了良好的故障可检测性结果。在这项工作中诊断出的故障是两个转子条断裂,机械不平衡和轴承缺陷。

著录项

  • 来源
    《Mechanical systems and signal processing》 |2017年第1期|568-589|共22页
  • 作者单位

    HSPdigital - CA Telematica, Procesamiento Digital de senales, DICIS, Universidad de Guanajuato, Carr. Salamanca-Valle km 3.5+1.8, Palo Blanco, 36700 Salamanca, Gto., Mexico;

    HSPdigital - Department of Electrical Engineering, University of Valladolid, UVa., 47011 Valladolid, Spain;

    HSPdigital - CA Mecatronica, Facultad de Ingenieria, Universidad Autonoma de Queretaro, Campus San Juan del Rio, Rio Moctezuma 249, 76807 San Juan del Rio, Qro., Mexico;

    HSPdigital - CA Telematica, Procesamiento Digital de senales, DICIS, Universidad de Guanajuato, Carr. Salamanca-Valle km 3.5+1.8, Palo Blanco, 36700 Salamanca, Gto., Mexico;

    HSPdigital - CA Telematica, Procesamiento Digital de senales, DICIS, Universidad de Guanajuato, Carr. Salamanca-Valle km 3.5+1.8, Palo Blanco, 36700 Salamanca, Gto., Mexico;

    HSPdigital - CA Telematica, Procesamiento Digital de senales, DICIS, Universidad de Guanajuato, Carr. Salamanca-Valle km 3.5+1.8, Palo Blanco, 36700 Salamanca, Gto., Mexico;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fault diagnosis; Induction motors; Spectral analysis; Acoustic sound; Vibration; CEEMD;

    机译:故障诊断;感应电动机;光谱分析;声音;振动;中东欧;

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