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A novel fault features extraction scheme for power transmission line fault diagnosis

机译:输电线路故障诊断的故障特征提取新方案

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This paper proposes a novel transmission line fault detection and classification scheme, based on a single-end measurements using time shift invariant property of a sinusoidal waveform. Various types of faults at different locations, fault resistance and fault inception angles on a 400 kV – 361.65 km power system transmission line are investigated. The scheme is used to extract distinctive fault features over 1 over 8 of a cycle and 1 over 2 of a cycle data windows. The performance of the feature extraction scheme was tested on a machine intelligent platform WEKA by using two types of classifiers, Fuzzy logic reasoning (FLR), and support vector machine (SVM). The result shows that, the scheme can classify all types of short circuit faults on a doubly fed transmission lines. Accuracy between 95.95% and 100% is achieved.
机译:本文提出了一种基于正弦波形时移不变特性的单端测量的新型输电线路故障检测和分类方案。研究了400 kV – 361.65 km电力系统传输线上不同位置的各种类型的故障,故障电阻和故障起始角。该方案用于提取超过8个周期的1个周期和超过2个周期的1个周期的数据窗口的独特故障特征。通过使用两种类型的分类器,模糊逻辑推理(FLR)和支持向量机(SVM),在机器智能平台WEKA上测试了特征提取方案的性能。结果表明,该方案可以对双馈输电线路上的所有类型的短路故障进行分类。准确度在95.95%和100%之间。

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