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基于多尺度排列熵的滚动轴承故障特征提取 被引量:11
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作者 王泽 王红军 《组合机床与自动化加工技术》 北大核心 2020年第8期30-34,38,共6页
针对现有滚动轴承故障识别精度低的问题,存在冗杂信息较多和分解识别计算量大的问题,将集合经验模态分解(ensemble empirical mode decomposition,EEMD)与多尺度排列熵、邻域粗糙集(neighborhood rough set,NRS)进行结合提出一种针对轴... 针对现有滚动轴承故障识别精度低的问题,存在冗杂信息较多和分解识别计算量大的问题,将集合经验模态分解(ensemble empirical mode decomposition,EEMD)与多尺度排列熵、邻域粗糙集(neighborhood rough set,NRS)进行结合提出一种针对轴承系统故障特征提取的方法。文章对传统的邻域粗糙集算法进行改进,将故障信号进行EEMD分解和多尺度排列熵计算后形成条件属性,从而建立故障识别决策表,然后利用邻域粗糙集对决策表进行属性约简消除冗余的属性。最后将约简后的敏感特征子集输入概率神经网络中进行模式识别。通过实验结果表明,该文提出的方法对滚动轴承故障特征提取以及对于故障的精确识别是十分有效的,能够减小计算量同时精确实现故障诊断。 展开更多
关键词 集合经验模态分解 多尺度排列熵 改进邻域粗糙集 滚动轴承故特征
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Rolling element bearing instantaneous rotational frequency estimation based on EMD soft-thresholding denoising and instantaneous fault characteristic frequency 被引量:7
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作者 赵德尊 李建勇 +2 位作者 程卫东 王天杨 温伟刚 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第7期1682-1689,共8页
The accurate estimation of the rolling element bearing instantaneous rotational frequency(IRF) is the key capability of the order tracking method based on time-frequency analysis. The rolling element bearing IRF can b... The accurate estimation of the rolling element bearing instantaneous rotational frequency(IRF) is the key capability of the order tracking method based on time-frequency analysis. The rolling element bearing IRF can be accurately estimated according to the instantaneous fault characteristic frequency(IFCF). However, in an environment with a low signal-to-noise ratio(SNR), e.g., an incipient fault or function at a low speed, the signal contains strong background noise that seriously affects the effectiveness of the aforementioned method. An algorithm of signal preprocessing based on empirical mode decomposition(EMD) and wavelet shrinkage was proposed in this work. Compared with EMD denoising by the cross-correlation coefficient and kurtosis(CCK) criterion, the method of EMD soft-thresholding(ST) denoising can ensure the integrity of the signal, improve the SNR, and highlight fault features. The effectiveness of the algorithm for rolling element bearing IRF estimation by EMD ST denoising and the IFCF was validated by both simulated and experimental bearing vibration signals at a low SNR. 展开更多
关键词 rolling element bearing low signal-to-noise ratio empirical mode decomposition soft-thresholding denoising instantaneous fault characteristic frequency instantaneous rotational frequency
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