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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Renyi entropy-based generalized statistical moments for early fatigue defect detection of rolling-element bearing
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Renyi entropy-based generalized statistical moments for early fatigue defect detection of rolling-element bearing

机译:基于Renyi熵的广义统计矩用于滚动轴承早期疲劳缺陷检测

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Statistical moments have been widely used for condition monitoring and diagnosis of rolling-element bearings. However, lower moments are less sensitive to incipient faults, whereas higher moments are over-sensitive to spurious vibrations and noise. Hence, the statistical moments used in practice are limited to kurtosis and third normalized moment of rectified data, i.e. Honarvar third moment S{sub}r. In order to overcome the drawbacks of kurtosis and S{sub}r, a class of new diagnostic indices have been derived from the viewpoint of Renyi entropy, to characterize the vibration signature. These new indices can be treated as a generalization of the traditional statistical moments, of which kurtosis and S{sub}r are just two special cases. Numerical simulations and experiments have been conducted. The results show that these new indices are as effective as kurtosis and S{sub}r in detecting the defect of a bearing, and that some of the new indices could provide a better compromise performance than kurtosis and S{sub}r with respect to the sensitivity and the robustness.
机译:统计矩已广泛用于滚动轴承的状态监测和诊断。但是,较低的力矩对初期故障较不敏感,而较高的力矩对杂散振动和噪声过于敏感。因此,实践中使用的统计矩仅限于峰度和校正数据的第三归一化矩,即Honarvar第三矩S {r} r。为了克服峰度和S {sub} r的缺点,从Renyi熵的观点出发,推导了一类新的诊断指标,以表征振动特征。这些新指标可以看作是传统统计矩的概括,其中峰度和S {sub} r只是两个特例。进行了数值模拟和实验。结果表明,这些新指标在检测轴承缺陷方面与峰度和S {sub} r一样有效,并且相对于峰度和S {sub} r,这些新指标可以提供更好的折衷性能。灵敏度和鲁棒性。

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