Detection and classification of faults on six phase transmission line using ANN

Ebha Koley, Anamika Jain, A. S. Thoke, Abhinav Jain, Subhojit Ghosh
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引用次数: 36

Abstract

The demand of electrical energy is continuously increasing. High phase order transmission system is a viable alternative due to increasing costs of right of way. Six phase transmission lines can carry more power for same phase to phase voltage with the same right of way economically. Protection of six phase transmission lines has been a very challenging task. Earlier simulations of six phase transmission line have been done in PSCAD/EMTDC software. In this paper MATLAB® software and its associated Simulink® and Simpowersystem® toolboxes have been used to simulate the six phase transmission line. Application of Artificial Neural Network for protection of six phase transmission line against ground faults is presented, which the authors believe has not been reported earlier. Fundamental components of six phase voltages and currents have been used as inputs for training of the artificial neural network for detection and classification of faulted phase using neural network toolbox of MATLAB®. A sample 765 kV system of 60 km length has been selected for study. The study takes into account the effect of variation in fault inception angle, fault distance location and fault resistance. The results indicate the suitability of proposed technique and its adaptability to changing system conditions.
基于神经网络的六相输电线路故障检测与分类
对电能的需求在不断增加。由于路权成本的增加,高相序传输系统是一种可行的替代方案。六相输电线路在同等通行权下,在相同的相电压下可以经济地输送更多的电能。六相输电线路的保护一直是一项非常具有挑战性的任务。在PSCAD/EMTDC软件中对六相传输线进行了较早的仿真。本文采用MATLAB®软件及其配套的Simulink®和Simpowersystem®工具箱对六相传输线进行了仿真。介绍了人工神经网络在六相输电线路接地故障保护中的应用,笔者认为这是前人未见报道的。利用MATLAB®的神经网络工具箱,将6相电压和电流的基本分量作为训练人工神经网络的输入,用于故障相位的检测和分类。选取了一个长度为60 km的765 kV系统作为样本进行研究。该研究考虑了故障起始角、故障距离位置和故障电阻变化的影响。结果表明,所提技术的适用性及其对变化的系统条件的适应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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