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Bispectrum analysis for feature extraction of pitting fault in wind turbine gearbox

机译:双谱分析用于风轮机齿轮箱点蚀故障特征提取

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This paper discusses the theory of higher-order statistical analysis and its application in gear pitting fault feature extraction from gearbox vibration signals analysis of a large scale wind turbine generator system (WTGS). The bispectrum was used to inhibit the Gaussian noise in measured vibration signals and to reveal the fault related non-Gaussian information. We propose to divide the dual-frequency plan of bispectrum into several partitions and use the total amplitude value of each partition, which related to the non-Gaussian intensity of vibration signals, as feature values for identification of pitting fault. It can be seen by comparing the results between pitting fault and normal condition that the proposed method are effective for the extraction of gear pitting fault information from noised vibration signals and bring stable performance, high sensitivity.
机译:本文讨论了高阶统计分析的理论及其在大型风力发电机系统齿轮箱振动信号分析中齿轮点蚀故障特征提取中的应用。双谱用于抑制测得的振动信号中的高斯噪声,并揭示与故障有关的非高斯信息。我们建议将双频谱的双频计划划分为几个分区,并使用每个分区的总振幅值(与振动信号的非高斯强度有关)作为特征值,以识别点蚀故障。通过比较点蚀故障和正常情况的结果可以看出,该方法对于从噪声振动信号中提取齿轮点蚀故障信息是有效的,并且具有稳定的性能,较高的灵敏度。

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