A novel fault diagnosis method based on EMD, cyclostationary, SK and TPTSR

被引:2
|
作者
Yijie Niu
Jiyou Fei
Yuanyuan Li
Deng Wu
机构
[1] Dalian Jiaotong University,College of Mechanical Engineering
[2] Dalian Jiaotong University,College of Software Engineering
[3] Dalian Jiaotong University,College of Locomotive and Rolling
[4] Civil Aviation University of China,College of Electronic Information and Automation
[5] Southwest Jiaotong University,Traction Power State Key Laboratory
来源
Journal of Mechanical Science and Technology | 2020年 / 34卷
关键词
Fault diagnosis; Motor bearing; Two-phase test sample sparse representation (TPTSR); EMD; Cyclostationary; Spectral kurtosis;
D O I
暂无
中图分类号
学科分类号
摘要
A novel method based on empirical model decomposition (EMD), cyclostationary, spectral kurtosis (SK) and two-phase test sample sparse representation (TPTSR), called ECK-TPTSR is proposed for fault diagnosis in this paper. In the ECK-TPTSR method, the vibration signal is decomposed into several components by EMD. Then each component can be modelled as cyclostationary for noise reduction. Next, the proposed method computes the kurtosis of the unbiased autocorrelation on the squared envelope of each component, and extracts the component with the highest kurtosis. Finally, the extracted component is used to construct training samples and test samples, which are input into the TPTSR classifier to fulfill fault classification accurately. Moreover, the experimental results indicate that the ECK-TPTSR method can effectively achieve fault diagnosis of motor bearing and obtain higher classification accuracy.
引用
收藏
页码:1925 / 1935
页数:10
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