A Failure Diagnosis Method for Rolling Bearings Based on UEE-EMD
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TH133.33

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    Abstract:

    Rolling bearing is the core component of large rotating machinery, and the fault diagnosis of rolling bearings is of great significance to guarantee the stability of rotating machinery. EMD is a very effective method for fault diagnosis because of its unique advantages in the analysis of nonlinear unstable signal. However, the in- trinsic endpoint effects of EMD cause non-negligible feature extraction errors, which will affect the accuracy of fault diagnosis. To solve the above problem, this paper proposed an EMD method based on undistorted source signal whose endpoints are extreme points(UEE-EMD). EMD restrained the emergence of endpoint effects from the source through overlapping sampling and extremal endpoints, obstructed the signal distortion by cutting the ends of IMFs, and guaranteed the accuracy of the feature extraction. The simulation experiment of fault diagnosis shows that the rolling bearing fault diagnosis based on UEE-EMD achieves better diagnosis results.

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陈晓玥,耿明,陈鹏展.一种基于UEE-EMD的滚动轴承故障诊断方法[J].华东交通大学学报英文版,2019,36(5):74-81.
Chen Xiao, Geng Ming, Chen Pengzhan. A Failure Diagnosis Method for Rolling Bearings Based on UEE-EMD[J]. JOURNAL OF EAST CHINA JIAOTONG UNIVERSTTY,2019,36(5):74-81

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  • Received:
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  • Online: May 31,2021
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