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An algorithm to remove noise from locomotive bearing vibration signal based on self-adaptive EEMD filter 被引量:4

An algorithm to remove noise from locomotive bearing vibration signal based on self-adaptive EEMD filter
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摘要 An improved ensemble empirical mode decomposition(EEMD) algorithm is described in this work, in which the sifting and ensemble number are self-adaptive. In particular, the new algorithm can effectively avoid the mode mixing problem. The algorithm has been validated with a simulation signal and locomotive bearing vibration signal. The results show that the proposed self-adaptive EEMD algorithm has a better filtering performance compared with the conventional EEMD. The filter results further show that the feature of the signal can be distinguished clearly with the proposed algorithm, which implies that the fault characteristics of the locomotive bearing can be detected successfully. An improved ensemble empirical mode decomposition (EEMD) algorithm is described in this work, in which the sifting and ensemble number are self-adaptive. In particular, the new algorithm can effectively avoid the mode mixing problem. The algorithm has been validated with a simulation signal and locomotive bearing vibration signal. The results show that the proposed self-adaptive EEMD algorithm has a better filtering performance compared with the conventional EEMD. The filter results further show that the feature of the signal can be distinguished clearly with the proposed algorithm, which implies that the fault characteristics of the locomotive bearing can be detected successfully.
出处 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第2期478-488,共11页 中南大学学报(英文版)
基金 Project(61573381)supported by the National Natural Science Foundation of China Project(2012AA051601)supported by the National High-tech Research and Development Program of China
关键词 locomotive bearing vibration signal enhancement self-adaptive EEMD parameter-varying noise signal feature extraction locomotive bearing vibration signal enhancement self-adaptive EEMD parameter-varying noise signal feature extraction
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