ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions

In practical applications, the signal measured from a complex mechanical system is usually disturbed by various noises due to the compounded effect of interferences of other machine elements and background noises, especially under varying speed conditions. Resonance-based approaches have been proven...

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Main Authors: Yong Ren, Wei Li, Zhencai Zhu, Fan Jiang
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
FCO
Online Access:https://ieeexplore.ieee.org/document/8660427/
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spelling doaj-2b053886682f4f98951710f5855593032021-03-29T22:21:19ZengIEEEIEEE Access2169-35362019-01-017320723208410.1109/ACCESS.2019.29028518660427ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed ConditionsYong Ren0https://orcid.org/0000-0002-9294-6412Wei Li1https://orcid.org/0000-0002-2305-2642Zhencai Zhu2Fan Jiang3https://orcid.org/0000-0002-4327-2431School of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou, ChinaSchool of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou, ChinaSchool of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou, ChinaSchool of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou, ChinaIn practical applications, the signal measured from a complex mechanical system is usually disturbed by various noises due to the compounded effect of interferences of other machine elements and background noises, especially under varying speed conditions. Resonance-based approaches have been proven to be effective methods to address this problem. However, even if the optimal resonance band is accurately determined, the in-band noise with frequency content in the range covered by the band-pass filter is not eliminated. To avoid missed diagnosis and misdiagnosis of faults in bearings, an iterated SVD (ISVD)-based in-band noise reduction method combined with envelope order spectrum analysis is proposed in this paper. First, the optimal frequency band of a vibrational signal is determined with the help of an enhanced wavelet packet transform kurtogram, in which the kurtosis of each node is calculated based on the envelope spectrum of a signal be reconstructed using the wavelet packet coefficients. The node with the maximum kurtosis value is used to reconstruct the signal. Second, the envelope of a reconstructed signal is calculated by Hilbert transform and the ISVD method is applied to it to reduce the in-band noise. To avoid the destruction of useful information caused by excessive iteration, a threshold is set to determine the number of iterations. After iterative processing, a de-noised signal is reconstructed based on the relationship between the singular value and a frequency component. Finally, the reconstructed signal is resampled and transformed into the fault characteristic order domain where the bearing fault type can be identified from the envelope order spectra. The simulations and experiments were used to validate the efficacy of the proposed method. Compared with the spectral subtraction method, the ISVD method can suppress in-band noise efficiently and beneficial to extract the fault characteristic order under variable speed conditions.https://ieeexplore.ieee.org/document/8660427/Rolling bearingwavelet package transform kurtogramiterated SVDFCOvariable speed
collection DOAJ
language English
format Article
sources DOAJ
author Yong Ren
Wei Li
Zhencai Zhu
Fan Jiang
spellingShingle Yong Ren
Wei Li
Zhencai Zhu
Fan Jiang
ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions
IEEE Access
Rolling bearing
wavelet package transform kurtogram
iterated SVD
FCO
variable speed
author_facet Yong Ren
Wei Li
Zhencai Zhu
Fan Jiang
author_sort Yong Ren
title ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions
title_short ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions
title_full ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions
title_fullStr ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions
title_full_unstemmed ISVD-Based In-Band Noise Reduction Approach Combined With Envelope Order Analysis for Rolling Bearing Vibration Monitoring Under Varying Speed Conditions
title_sort isvd-based in-band noise reduction approach combined with envelope order analysis for rolling bearing vibration monitoring under varying speed conditions
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description In practical applications, the signal measured from a complex mechanical system is usually disturbed by various noises due to the compounded effect of interferences of other machine elements and background noises, especially under varying speed conditions. Resonance-based approaches have been proven to be effective methods to address this problem. However, even if the optimal resonance band is accurately determined, the in-band noise with frequency content in the range covered by the band-pass filter is not eliminated. To avoid missed diagnosis and misdiagnosis of faults in bearings, an iterated SVD (ISVD)-based in-band noise reduction method combined with envelope order spectrum analysis is proposed in this paper. First, the optimal frequency band of a vibrational signal is determined with the help of an enhanced wavelet packet transform kurtogram, in which the kurtosis of each node is calculated based on the envelope spectrum of a signal be reconstructed using the wavelet packet coefficients. The node with the maximum kurtosis value is used to reconstruct the signal. Second, the envelope of a reconstructed signal is calculated by Hilbert transform and the ISVD method is applied to it to reduce the in-band noise. To avoid the destruction of useful information caused by excessive iteration, a threshold is set to determine the number of iterations. After iterative processing, a de-noised signal is reconstructed based on the relationship between the singular value and a frequency component. Finally, the reconstructed signal is resampled and transformed into the fault characteristic order domain where the bearing fault type can be identified from the envelope order spectra. The simulations and experiments were used to validate the efficacy of the proposed method. Compared with the spectral subtraction method, the ISVD method can suppress in-band noise efficiently and beneficial to extract the fault characteristic order under variable speed conditions.
topic Rolling bearing
wavelet package transform kurtogram
iterated SVD
FCO
variable speed
url https://ieeexplore.ieee.org/document/8660427/
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AT weili isvdbasedinbandnoisereductionapproachcombinedwithenvelopeorderanalysisforrollingbearingvibrationmonitoringundervaryingspeedconditions
AT zhencaizhu isvdbasedinbandnoisereductionapproachcombinedwithenvelopeorderanalysisforrollingbearingvibrationmonitoringundervaryingspeedconditions
AT fanjiang isvdbasedinbandnoisereductionapproachcombinedwithenvelopeorderanalysisforrollingbearingvibrationmonitoringundervaryingspeedconditions
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