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Cited 52 time in webofscience Cited 58 time in scopus
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Fault Detection of a Roller-Bearing System through the EMD of a Wavelet Denoised Signalopen access

Authors
Ahn, Jong-HyoKwak, Dae-HoKoh, Bong-Hwan
Issue Date
Aug-2014
Publisher
MDPI
Keywords
fault detection; wavelet de-noising; empirical mode decomposition; intrinsic mode function; proper orthogonal value
Citation
SENSORS, v.14, no.8, pp 15022 - 15038
Pages
17
Indexed
SCIE
SCOPUS
Journal Title
SENSORS
Volume
14
Number
8
Start Page
15022
End Page
15038
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/23508
DOI
10.3390/s140815022
ISSN
1424-8220
1424-3210
Abstract
This paper investigates fault detection of a roller bearing system using a wavelet denoising scheme and proper orthogonal value (POV) of an intrinsic mode function (IMF) covariance matrix. The IMF of the bearing vibration signal is obtained through empirical mode decomposition (EMD). The signal screening process in the wavelet domain eliminates noise-corrupted portions that may lead to inaccurate prognosis of bearing conditions. We segmented the denoised bearing signal into several intervals, and decomposed each of them into IMFs. The first IMF of each segment is collected to become a covariance matrix for calculating the POV. We show that covariance matrices from healthy and damaged bearings exhibit different POV profiles, which can be a damage-sensitive feature. We also illustrate the conventional approach of feature extraction, of observing the kurtosis value of the measured signal, to compare the functionality of the proposed technique. The study demonstrates the feasibility of wavelet-based de-noising, and shows through laboratory experiments that tracking the proper orthogonal values of the covariance matrix of the IMF can be an effective and reliable measure for monitoring bearing fault.
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College of Engineering (Department of Mechanical, Robotics and Energy Engineering)
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