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Weighted sparse representation based on failure dynamics simulation for planetary gearbox fault diagnosis

机译:基于故障动力学模拟的行星齿轮箱故障诊断加权稀疏表示

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摘要

The most common and effective way of rotating machinery diagnostics is to extract fault impact features from the vibration signals and to carry out further processing. As for planetary gear sets, because of the simultaneous mesh of multiple gears and the effect of the carrier rotation, the fault features are submerged in the strong harmonic signals and other noise. Due to the lack of prior information on the faults, the conventional fault diagnostic methods often fail to achieve satisfactory results. To address this problem, we give the prior information of a chipped planetary gear set by dynamics simulation, and utilize the information in the time domain to improve the diagnosis performance. Firstly, a pure torsional lumped parameter model is used to simulate the system vibration response with different degrees of failure. Through statistical analysis, the margin factor, the most sensitive indicator, is selected as prior information to reflect the local gear fault among several indexes. Finally, a weighted sparse representation method based on the prior information provided above is proposed to extract the impact features. Moreover, it is found that the extracted components have a strong-weak cyclic impact feature in the chipped planetary gear sets. The features and effectiveness of the method are verified by an experiment on a planetary gearbox test rig. To validate the superiority of the proposed method, comparisons are made among several state-of-the-art feature extraction methods.
机译:旋转机械诊断的最常见有效的方法是从振动信号中提取故障冲击特征并进行进一步处理。至于行星齿轮组,由于多档的同时网和载流子旋转的效果,故障特征被淹没在强谐波信号和其他噪声中。由于缺乏关于故障的现有信息,传统的故障诊断方法通常无法实现令人满意的结果。为了解决这个问题,我们提供了通过动态模拟设置的芯片行星齿轮的先前信息,并利用时域中的信息来提高诊断性能。首先,使用纯扭转集总参数模型来模拟具有不同程度的故障的系统振动响应。通过统计分析,选择边缘因子,最敏感的指标,作为现有信息,以反映几个指标之间的本地齿轮故障。最后,提出了一种基于上面提供的先前信息的加权稀疏表示方法来提取影响特征。此外,发现提取的部件在芯片行星齿轮组中具有强弱循环冲击特征。通过行星齿轮箱试验台上的实验验证了该方法的特征和有效性。为了验证所提出的方法的优越性,在几种最先进的特征提取方法中进行了比较。

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