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Issue title: 2nd International Conference on Vibro-Impact Systems (ICoVIS), Sanya, China, 6–9 January, 2010
Article type: Research Article
Authors: Jiang, Lingli; | Liu, Yilun | Li, Xuejun | Chen, Anhua
Affiliations: College of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China | Hunan Provincial Key Laboratory of Health Maintenance for Mechanical Equipment, Hunan University of Science and Technology, Xiangtan 411201, China
Note: [] Corresponding author: Lingli Jiang, Tel.: +86 15573216060; Fax: +86 0732 5829480; E-mail: linlyjiang@163.com
Abstract: This paper proposes a new approach combining autoregressive (AR) model and fuzzy cluster analysis for bearing fault diagnosis and degradation assessment. AR model is an effective approach to extract the fault feature, and is generally applied to stationary signals. However, the fault vibration signals of a roller bearing are non-stationary and non-Gaussian. Aiming at this problem, the set of parameters of the AR model is estimated based on higher-order cumulants. Consequently, the AR parameters are taken as the feature vectors, and fuzzy cluster analysis is applied to perform classification and pattern recognition. Experiments analysis results show that the proposed method can be used to identify various types and severities of fault bearings. This study is significant for non-stationary and non-Gaussian signal analysis, fault diagnosis and degradation assessment.
Keywords: Degradation assessment, Fault diagnosis, AR mode, Higher-order statistics, Fuzzy cluster analysis
DOI: 10.3233/SAV-2010-0572
Journal: Shock and Vibration, vol. 18, no. 1-2, pp. 127-137, 2011
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