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Bearing Fault Diagnosis Based on Energy Spectrum Statistics and Modified Mayfly Optimization Algorithm

机译:基于能谱统计和改进的MANFLY优化算法的轴承故障诊断

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摘要

This study proposes a novel resonance demodulation frequency band selection method named the initial center frequency-guided filter (ICFGF) to diagnose the bearing fault. The proposed technology has a better performance on resisting the interference from the random impulses. More explicitly, the ICFGF can be summarized as two steps. In the first step, a variance statistic index is applied to evaluate the energy spectrum distribution, which can adaptively determine the center frequency of the fault impulse and suppress the interference from random impulse effectively. In the second step, a modified mayfly optimization algorithm (MMA) is applied to search the optimal resonance demodulation frequency band based on the center frequency from the first step, which has faster convergence. Finally, the filtered signal is processed by the squared envelope spectrum technology. Results of the proposed method for signals from an outer fault bearing and a ball fault bearing indicate that the ICFGF works well to extract bearing fault feature. Furthermore, compared with some other methods, including fast kurtogram, ensemble empirical mode decomposition, and conditional variance-based selector technology, the ICFGF can extract the fault characteristic more accurately.
机译:本研究提出了一种名为初始中心频率引导滤波器(ICFGF)的新型共振解调频带选择方法来诊断轴承故障。所提出的技术在抵抗随机冲动的干扰方面具有更好的性能。更明确地,ICFGF可以总结为两个步骤。在第一步中,应用方差统计索引来评估能量谱分布,这可以自适应地确定故障脉冲的中心频率,并有效地抑制随机脉冲的干扰。在第二步骤中,应用修改的Maysfly优化算法(MMA)以基于来自第一步的中心频率搜索最佳共振解调频带,其具有更快的收敛。最后,通过平方包络谱技术处理过滤信号。来自外部故障轴承的信号的提出方法和球形故障轴承的结果表明,ICFGF适用于提取轴承故障特征。此外,与其他一些方法相比,包括快速Kurtogram,集合经验模式分解和基于条件方差的选择器技术,ICFGF可以更准确地提取故障特性。

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