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A fault diagnosis approach for roller bearing based on IMF envelope spectrum and SVM

机译:基于IMF包络谱和SVM的滚动轴承故障诊断方法

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摘要

Targeting the modulation characteristics of roller bearing fault vibration signals, a method of fault feature extractionbased on intrinsic mode function (IMF) envelope spectrum is proposed to overcome the limitations of conventional envelope analysis method. By utilizing the proposed feature extraction method, the disadvantages of conventional envelope analysis method such as the chosen of central frequency of filter with experience in advance, looking for spectral line of fault characteristic frequencies in envelope spectrum and so on could be overcome. Firstly, the original modulation signals are decomposed into a number of IMFs by empirical mode decomposition (EMD) method. Secondly, the ratios of amplitudes at the different fault characteristic frequencies in the envelope spectra of some IMFs that include dominant fault information are defined as the characteristic amplitude ratios. Finally, the characteristic amplitude ratios serve as the fault characteristic vectors to be input to the support vector machine (SVM) classifiers and the work condition and fault patterns of the roller bearings are identified. Since the recognition results are available directly from the output of the SVM classifiers, the proposed diagnosis method provides the possibility to fulfill the automatic recognition to machinery faults.
机译:针对滚动轴承故障振动信号的调制特性,提出了一种基于固有模式函数(IMF)包络谱的故障特征提取方法,以克服传统包络分析方法的局限性。利用提出的特征提取方法,可以克服传统包络分析方法的缺点,如事先选择滤波器的中心频率,在包络谱中寻找故障特征频率的谱线等。首先,通过经验模式分解(EMD)方法将原始调制信号分解为多个IMF。其次,将包含主要故障信息的某些IMF的包络谱中不同故障特征频率处的振幅比定义为特征振幅比。最后,特征振幅比用作要输入到支持向量机(SVM)分类器的故障特征向量,并确定滚动轴承的工作条件和故障模式。由于识别结果可直接从SVM分类器的输出中获得,因此所提出的诊断方法提供了实现对机械故障进行自动识别的可能性。

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