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Introduce the quantitative identification method of rolling bearing in the application of fault detection

机译:介绍故障检测应用中滚动轴承的定量识别方法

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摘要

Rolling bearing is an important part of rotating machinery. Its failure will directly affect the normal operation of the whole machinery. This study proposed an intelligent diagnosis model based on Fuzzy support vector description for the quantitative identification of bearing fault. The proposed model constructs the spherically shaped decision boundary by training the features of normal bearing data, and then calculates the fuzzy monitoring coefficient to identify the bearing damage.
机译:滚动轴承是旋转机械的重要组成部分。其故障将直接影响整个机器的正常运行。本研究提出了一种基于模糊支持载体描述的智能诊断模型,用于定量识别轴承故障的定量识别。所提出的模型通过训练正常轴承数据的特征来构造球形决策边界,然后计算模糊监测系数以识别轴承损坏。

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