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Effect of cascade methods on vibration defects detection

机译:级联方法对振动缺陷检测的影响

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Within the framework of monitoring rotating machines, vibration analysis remains an effective tool for fault detection. This analysis generally consists of measuring acceleration signals from critical and judiciously chosen points of a machine with the help of piezoelectric sensors. However, relevant information concerning the machine health can be masked by disturbances such as noise. The detection reliability will then be conditioned directly by the quality of the collected signal. Signal preprocessing methods, in particular denoising methods, can significantly improve the detection quality in terms of reliability. In this paper we aim to compare two methods of denoising based on signal spectral content analysis: discrete wavelet transform and empirical mode decomposition. A first study is carried out in order to optimize specific parameters related to each of the two methods, starting from experimental data obtained on degraded bearings. In fact for each parameter, one has to define conditions which allow the best detection of periodic pulses in vibration signals thanks to indicators such as kurtosis and crest factor. The second study consists of assessing the effectiveness of each denoising method on a vibration signal measured on a failed bearing. This signal is then disturbed by various noises simulated with variable levels. This study aims to show the effectiveness of each of these two methods on the early detection of impulse defects.
机译:在监视旋转机器的框架内,振动分析仍然是故障检测的有效工具。这种分析通常包括借助压电传感器测量机器的关键和明智选择的点的加速度信号。但是,有关机器运行状况的相关信息可能会被诸如噪音之类的干扰所掩盖。然后,检测可靠性将直接取决于收集到的信号的质量。信号预处理方法,特别是去噪方法,可以在可靠性方面显着提高检测质量。本文旨在比较基于信号频谱内容分析的两种去噪方法:离散小波变换和经验模态分解。为了从与退化轴承有关的实验数据开始,为了优化与这两种方法中的每一种有关的特定参数,进行了首次研究。实际上,由于诸如峰度和波峰因数之类的指标,对于每个参数,都必须定义条件,以最好地检测振动信号中的周期性脉冲。第二项研究包括评估每种降噪方法对在失效轴承上测得的振动信号的有效性。然后,该信号会受到可变电平模拟的各种噪声的干扰。这项研究旨在证明这两种方法在早期检测脉冲缺陷方面的有效性。

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