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High Impedance Fault Classification and Localization Method for Power Distribution Network

机译:配电网高阻抗故障分类与定位方法

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This paper presents a technique for high impedance fault diagnosis in a power distribution network. A segment of a 22 kV Eskom real power system is modelled in Power World Software. Various cases including High Impedance Faults (HIFs), normal condition, load switching and capacitor switching are subsequently investigated through the study of the model. Discrete Wavelet Transform (DWT) is used as a feature extraction technique. The extracted features are subsequently fed into an Artificial Neural Network (ANN) and Gaussian Process Regression (GPR) Schemes in order to effectively diagnose HIFs. ANN is used for fault classification and detection from other power system conditions. Furthermore, the GPR scheme is used to estimate the location of the fault. Thus a hybrid technique which comprises of DWT-ANN-GPR is proposed for HIF diagnosis. The results obtained shows that the scheme is fairly accurate and has minimum estimation error for fault location.
机译:本文提出了一种用于配电网中高阻抗故障诊断的技术。 Power World软件对22 kV Eskom实际电力系统的一部分进行了建模。随后,通过模型研究,研究了各种情况,包括高阻抗故障(HIF),正常状态,负载切换和电容器切换。离散小波变换(DWT)用作特征提取技术。随后将提取的特征输入到人工神经网络(ANN)和高斯过程回归(GPR)方案中,以有效诊断HIF。 ANN用于故障分类和其他电力系统状况的检测。此外,GPR方案用于估计故障的位置。因此,提出了一种包含DWT-ANN-GPR的混合技术用于HIF诊断。所获得的结果表明该方案相当准确,并且对故障定位的估计误差最小。

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