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Multi-resolution Correlation Entropy and Its Application on Rotating Machinery Vibration Signal Analysis

机译:多分辨率相关熵及其在旋转机械振动信号分析中的应用

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A new feature parameter of vibration signal used in rotating machinery fault diagnosis method is analyzed, and in this paper, it is named multi-resolution correlation entropy (MRCE). After extracting the rolling bearing vibration signal, the denoised signal should be transformed by wavelet packet into several sub-signals which are attached to different frequencies. Next, the wavelet packet correlation coefficient will be calculated. Combined with the information entropy theory, the MRCE is obtained. The signal classification and state identification are realized by support vector machine (SVM) intelligent algorithm, and the results reflect the truth that applying MRCE as the feature index to detect the working state of rotating machinery can get good diagnostic accuracy, so that MRCE can be used in rotating machinery fault diagnosis in the future.
机译:分析了旋转机械故障诊断方法中一种新的振动信号特征参数,并将其称为多分辨率相关熵(MRCE)。提取出滚动轴承振动信号后,应通过小波包将去噪后的信号转换为多个子信号,并将其附加到不同的频率上。接下来,将计算小波包相关系数。结合信息熵理论,获得了MRCE。通过支持向量机(SVM)智能算法实现信号的分类和状态识别,结果反映了以MRCE作为特征指标来检测旋转机械工作状态的诊断准确度的事实,从而使MRCE具有较高的诊断精度。将来用于旋转机械故障诊断中。

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