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Issue title: Fuzzy Logic based Decision Making
Guest editors: Erik Maehle, Norbert Stoll and Chao-Hsien Chu
Article type: Research Article
Authors: Li, Yuefeng* | Zhou, Xingliang
Affiliations: Harbin University of Science and Technology Rongcheng Campus, Rongcheng, Shandong 264300, China
Correspondence: [*] Corresponding author: Yuefeng Li, Harbin University of Science and Technology Rongcheng Campus, Rongcheng, Shandong 264300, China. E-mail: [email protected].
Abstract: Currently, the methods for rolling bearing fault diagnosis using acquired signals still have certain deficiencies, such as mode mixing during signal decomposition and selection of the optimum fault feature. To address these problems, this paper used a method based on Hilbert vibration decomposition (HVD) and sample entropy to perform bearing fault diagnosis. This method firstly decomposed the acquired original signals of faulty bearings used the HVD algorithm, then extracted fault features from the processed signals, found the frequency and multiplied frequency of the bearing fault by substituting some experimental parameters and bearing parameters into the calculation formula. The results show that the method proposed in this paper can reduce other interfering signals during signal processing and achieve a fault diagnosis rate significantly higher than that of the original EMD algorithm.
Keywords: Fault diagnosis, HVD algorithm, signal acquisition, sample entropy
DOI: 10.3233/JCM-191048
Journal: Journal of Computational Methods in Sciences and Engineering, vol. 19, no. S1, pp. 331-340, 2019
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