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首页> 外文期刊>Journal of Sound and Vibration >Fault feature extraction of rolling element bearings using sparse representation
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Fault feature extraction of rolling element bearings using sparse representation

机译:基于稀疏表示的滚动轴承故障特征提取

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Influenced by factors such as speed fluctuation, rolling element sliding and periodical variation of load distribution and impact force on the measuring direction of sensor, the impulse response signals caused by defective rolling bearing are non-stationary, and the amplitudes of the impulse may even drop to zero when the fault is out of load zone. The non-stationary characteristic and impulse missing phenomenon reduce the effectiveness of the commonly used demodulation method on rolling element bearing fault diagnosis. Based on sparse representation theories, a new approach for fault diagnosis of rolling element bearing is proposed. The over-complete dictionary is constructed by the unit impulse response function of damped second-order system, whose natural frequencies and relative damping ratios are directly identified from the fault signal by correlation filtering method. It leads to a high similarity between atoms and defect induced impulse, and also a sharply reduction of the redundancy of the dictionary. To improve the matching accuracy and calculation speed of sparse coefficient solving, the fault signal is divided into segments and the matching pursuit algorithm is carried out by segments. After splicing together all the reconstructed signals, the fault feature is extracted successfully. The simulation and experimental results show that the proposed method is effective for the fault diagnosis of rolling element bearing in large rolling element sliding and low signal to noise ratio circumstances. (C) 2015 Elsevier Ltd. All rights reserved.
机译:受速度波动,滚动元件滑动以及载荷分布和传感器作用方向上的冲击力的周期性变化等因素的影响,滚动轴承故障引起的脉冲响应信号不稳定,脉冲幅度甚至可能下降当故障超出负载区域时,为零。非平稳特性和脉冲缺失现象降低了常用的解调方法在滚动轴承故障诊断中的有效性。基于稀疏表示理论,提出了一种滚动轴承故障诊断的新方法。完备字典由阻尼二阶系统的单位脉冲响应函数构成,其固有频率和相对阻尼比通过相关滤波方法直接从故障信号中识别出来。它导致原子与缺陷诱发的脉冲之间的高度相似性,并且还大大减少了字典的冗余性。为了提高稀疏系数求解的匹配精度和计算速度,将故障信号划分为多个段,并通过段进行匹配追踪算法。将所有重建的信号拼接在一起后,故障特征被成功提取。仿真和实验结果表明,该方法在滚动轴承滑动较大,信噪比较低的情况下,对于滚动轴承的故障诊断是有效的。 (C)2015 Elsevier Ltd.保留所有权利。

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