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Enhanced Frequency Band Entropy Method for Fault Feature Extraction of Rolling Element Bearings

机译:增强频带熵滚动元件轴承的故障特征提取方法

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摘要

Frequency band entropy (FBE) has been proved usable in the fault diagnosis of rolling bearings, but its performance is poor in the presence of non-Gaussian noise and a low signal-to-noise ratio. In order to extract the transient impulsive signals more effectively, wavelet packet transform (WPT) is considered as an alternative method for signal decomposition. Therefore, by introducing WPT into FBE, this article introduces an enhanced FBE (EFBE) adopting WPT as the filter of FBE to overcome the shortcomings of the original FBE. Then, the depth of EFBE is optimized using adaptive resonance bandwidth and power amplitude spectrum entropy (PASE). Third, a novel method based on the indicator PASE is introduced to select the optimal node of EFBE. Finally, the filtered signal is combined with the envelope power spectrum to extract the fault feature frequency. In addition, an evaluation indicator is proposed to evaluate the performance of the EFBE. The simulation and cases are used to demonstrate the effectiveness and improved performance of the EFBE compared with the original FBE and other typical methods. The results show that the EFBE can detect various rolling bearing failures and implement its fault diagnosis effectively.
机译:频段熵(FBE)已被证明可用于滚动轴承的故障诊断,但其性能在存在非高斯噪声和低信噪比中差。为了更有效地提取瞬态脉冲信号,小波分组变换(WPT)被认为是用于信号分解的替代方法。因此,通过将WPT引入FBE,本文介绍了一种增强的FBE(EFBE),采用WPT作为FBE的过滤器来克服原始FBE的缺点。然后,使用自适应谐振带宽和功率幅度谱熵(PASE)优化EFBE的深度。第三,引入了一种基于指标酶Pase的新方法来选择EFBE的最佳节点。最后,过滤信号与包络功率谱组合以提取故障特征频率。此外,提出了评估指标来评估EFBE的性能。与原始FBE和其他典型方法相比,模拟和案例用于展示EFBE对eFBE的有效性和改进的性能。结果表明,EFBE可以检测各种滚动轴承故障并有效地实现其故障诊断。

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