模式识别技术在机械设备故障诊断中的应用
The Application of Pattern Recognition Techniques in Fault Diagnosis of Machinery Equipment
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摘要: 本文从统计意义上分析了机械设备在不同运行状态下振动信号的特征;选择信号幅值的概率分布的前n阶矩作为特征向量来进行状态信息凝聚.在此,将设备的状态分为“完好”和“故障”两种,应用模式识别技术进行状态分类.最后通过对试验数据的分析,证实了特征参数的稳定性和对故障的敏感性.结果表明,分类判据是有效的.Abstract: In this paper, the characteristics of vibration signal of machinery in different running conditions are statistically analysed, and some moments of statistical distribution of signals are selected as the eigenvector to condense the state information. Here, we divide the states of machinery into two:‘good' and ‘faulty', and the pattern recognition techniques are used to classify the running conditions of machinery. At the end of this paper, the authors present some test data, and from the results obtained, it's verified that the eigenvector selected is reliable and sensible to faults. And the results also show the effectiveness of classification rule.
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[1] Julius,T.Tou,Pattern Recognition Principles,Addison-Wesley Pub.Comp.Inc.,Massachusetts(1974). [2] 王飞龙,《模式识别基础》,湖北科技出版社(1986) [3] Kashyap,R.L.,Optimal feature selection and decision rules in classification problems withtime series,IEEE Trans.Injorm.Theory,IT-24,3(1978),281-288. [4] 中山大学数学力学系,《概率论与数理统计》(上).人民教育出版社(1980),
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