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A computational intelligence approach for fault location in transmission lines

机译:输电线路故障定位的计算智能方法

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The main objective of this paper is to accurately estimate the fault location in a transmission line. Accurate estimation of transmission line fault location will lead to quicker restoration of the supply. At the relay location, the instantaneous values of faulty current, voltage and power signals are available. The available signals are decomposed using 13-level Discrete Wavelet Transform (DWT). From the decomposed signals, the statistical features are obtained. Using forward feature selection algorithm, the best feature set is selected. These features are then applied to an artificial feed forward neural network (FNN) for estimating the fault distance. The proposed fault locator has been trained for different fault scenarios (fault resistance and phase difference) and tested with both integer and non-integer distance values. The test results demonstrate that the adopted technique is a reliable method for estimating fault locations accurately on transmission lines.
机译:本文的主要目的是准确地估计传输线中的故障位置。准确估计传输线路故障位置将导致供应更快地恢复。在继电器位置,有故障电流,电压和电源信号的瞬时值。可用信号使用13级离散小波变换(DWT)进行分解。从分解信号中,获得统计特征。使用前向功能选择算法,选择了最佳功能集。然后将这些特征应用于人工馈送前向神经网络(FNN)以估计故障距离。所提出的故障定位器已被培训,用于不同的故障场景(故障电阻和相位差),并用整数和非整数距离值进行测试。测试结果表明,采用的技术是可靠的方法,用于在传输线上准确地估计故障位置。

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