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Defects Diagnosis of Bearing by Means of Acoustic Emission and Continuous Wavelet Transform

机译:声发射和连续小波变换的轴承缺陷诊断

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摘要

The acoustic emission signals of roiling bearing with different type of defects are de-noised and illustrated by the continuous wavelet transform and scalogram. Morlet wavelet function is selected and the wavelet parameters are optimized based on the principle of minimal wavelet entropy. The soft-threshold de-noising is used to filter the wavelet transform coefficients. The de-noised signals obtained by reconstructing the wavelet coefficients show the obvious impulsive features. Based on the optimized waveform parameters, the wavelet scalogram is used to analyze the real AE signal from the defective rolling bearing in experimental test rig. The results indicate that the proposed method is useful and efficient for signal purification and features extraction.
机译:具有不同类型缺陷的滚动轴承的声发射信号被去噪并通过连续小波变换和比例尺进行说明。选择Morlet小波函数,并根据最小小波熵原理对小波参数进行优化。软阈值去噪用于过滤小波变换系数。通过重构小波系数获得的去噪信号具有明显的脉冲特征。在优化的波形参数的基础上,小波尺度图被用于分析试验台中有缺陷的滚动轴承的真实声发射信号。结果表明,所提出的方法对于信号纯化和特征提取是有效的。

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