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Performance Degradation Assessment of Rolling Element Bearings using Improved Fuzzy Entropy

机译:改进的模糊熵评估滚动轴承的性能

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Rolling element bearings are an important unit in the rotating machines, and their performance degradation assessment is the basis of condition-based maintenance. Targeting the non-linear dynamic characteristics of faulty signals of rolling element bearings, a bearing performance degradation assessment approach based on improved fuzzy entropy (FuzzyEn) is proposed in this paper. FuzzyEn has less dependence on data length and achieves more freedom of parameter selection and more robustness to noise. However, it neglects the global trend of the signal when calculating similarity degree of two vectors, and thus cannot reflect the running state of the rolling element bearings accurately. Based on this consideration, the algorithm of FuzzyEn is improved in this paper and the improved FuzzyEn is utilized as an indicator for bearing performance degradation evaluation. The vibration data from run-to-failure test of rolling element bearings are used to validate the proposed method. The experimental results demonstrate that, compared with the traditional kurtosis and root mean square, the proposed method can detect the incipient fault in advance and can reflect the whole performance degradation process more clearly.
机译:滚动轴承是旋转机械中的重要单元,其性能下降评估是基于状态的维护的基础。针对滚动轴承故障信号的非线性动态特性,提出了一种基于改进模糊熵(FuzzyEn)的轴承性能退化评估方法。 FuzzyEn对数据长度的依赖性较小,并且可以实现更大的参数选择自由度和更高的抗噪声能力。但是,在计算两个向量的相似度时,它忽略了信号的整体趋势,因此不能准确反映滚动轴承的运行状态。基于此考虑,本文对FuzzyEn算法进行了改进,并将改进后的FuzzyEn作为轴承性能下降指标。从滚动轴承的运行到故障测试的振动数据被用于验证所提出的方法。实验结果表明,与传统的峰度和均方根相比,该方法可以提前发现初期故障,可以更加清晰地反映整个性能下降过程。

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