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Research on Rolling Element Bearing Fault Diagnosis Based on EEMD and Correlated Kurtosis

机译:基于EEMD和相关峰轴轴承的滚动元件轴承故障诊断研究

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摘要

In order to extract the faint fault information from complicated vibration signal of bearing, the correlated kurtosis is introduced into the field of rolling bearing fault diagnosis. Combined with ensemble empirical mode decomposition (EEMD) and correlated kurtosis, a feature extraction method is proposed. According to the method, by EEMD processing a group of intrinsic mode functions (IMFs) are obtained, then the IMF with maximal correlated kurtosis is selected, and the weak fault signal is clearly extracted. The effectiveness of the method is demonstrated on both simulated signal and actual data.
机译:为了从复杂的轴承振动信号中提取微弱的故障信息,将相关的峰氏术引入滚动轴承故障诊断领域。结合集合经验模式分解(EEMD)和相关的峰氏,提出了一种特征提取方法。根据该方法,通过EEMD处理一组内在模式函数(IMF),选择具有最大相关的峰度的IMF,并且清楚地提取了弱故障信号。在模拟信号和实际数据中对该方法的有效性进行了说明。

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