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Wavelet Threshold Analysis Combined with EMD Method for Mechanical Equipment Fault Diagnosis

机译:小波阈值分析结合机械设备故障诊断的EMD方法

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Concerning the problem of noise interference in the mechanical equipment fault signal acquisition, a novel mechanical equipment fault diagnosis method of wavelet shrinkage threshold based on Bayesian estimation combined with EMD is proposed. The fault signal denoising characteristics of different scales are considered in the proposed method. A new threshold which is suitable for the situation of noise distribution is selected. Noise reduction can be gotten by improving the threshold function. The signal components decomposed and denoised by EMD is extracted with cross-correlation and kurtosis criterion to highlight the high-frequency resonance components with which the blindness of IMF component selection can be avoided. The results of analysis applied to simulated signal and the measured signal show that the equipment fault detection performance can be improved.
机译:关于机械设备故障信号采集的噪声干扰问题,提出了一种基于贝叶斯估计与EMD结合的小波收缩阈值的新型机械设备故障诊断方法。以所提出的方法考虑不同尺度的故障信号去噪特性。选择适合噪声分布情况的新阈值。通过改善阈值函数,可以获得降噪。用EMD分解和去噪的信号分量用互相关和KurtOsis标准提取,以突出显示IMF分量选择的盲差的高频谐振分量。应用于模拟信号和测量信号的分析结果表明,可以提高设备故障检测性能。

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