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Methods for Bearing Fault Diagnosis of Converter Station's Valve Cooling System Main Circulating Pump
Pages: 37-40
Year: Issue:  5
Journal: Measurement & Control Technology

Keyword:  wavelet packet decompositionsample entropysupport vector machinebearing fault diagnosis;
Abstract: 对换流站阀水冷系统主泵轴承的故障诊断方法进行了比较研究.采用支持向量机作为分类工具,分别利用时域特征值和小波包分解取样本熵作为样本训练,比较分类准确率,并择优用于换流站阀水冷系统主泵的轴承故障诊断.首先,利用轴承故障试验台的数据,对采用时域特征值和小波包分解取样本熵作为样本训练的分类准确率进行了比较,结果表明小波包分解取样本熵值比时域特征参数更适合用于特征故障分类.然后将小波包分解取样本熵值用于换流站阀水冷系统主泵的轴承故障诊断,结果显示分类准确率达98%,完全满足工程运用需求.
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