Application of Spectral Amplitude Modulation in Low-speed Bearing Fault Diagnosis
ID:125
Submission ID:40 View Protection:ATTENDEE
Updated Time:2024-10-23 10:02:34 Hits:39
Poster Presentation
Abstract
Rolling bearings are key parts of rotating machinery and their failure will lead to equipment failure. Therefore, it is very necessary to extract fault characteristics of rolling bearings. When there are complex interference frequencies in the rolling bearing signals, the fault characteristic signals will be difficult to identify. In order to solve the above problems, this paper combines the wavelet threshold denoising and the spectral amplitude modulation (SAM) algorithm to apply to the low-speed bearing fault diagnosis. Firstly, perform wavelet thresholding denoising on the raw signals to obtain denoising signals. Secondly, the modified signals are obtained by SAM of the denoising signals. Finally, the fault features are extracted by envelope analysis of the modified signal. The proposed method is applied to experimental signals. Experimental results show the effectiveness of the proposed method in low-speed bearing fault diagnosis
Keywords
fault diagnosis, SAM, the wavelet threshold denoising, Low-speed, Feature extraction
Submission Author
ZuXiaojia
Zhejiang Ocean University
WangBing
Zhejiang Ocean University
TangHaihong
Zhejiang Ocean University and Mie University
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