Intelligent techniques for fault diagnosis in transmission lines — An overview

S. Singh, D. N. Vishwakarma
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引用次数: 26

Abstract

This paper presents survey and review of research and development in the field of faults detection, classification and their location that occurs in the transmission network. Transmission lines are integral part of the power system network and its main aim is to transmit the generated power to the consumer with least interruption. With an ever-increasing demand of electric power day by day because of increasing industrialization and urbanization of life style, fast and accurate fault analysis is very essential for better performance and minimal interruptions in power system. Fast detection and clearing of faults in transmission lines is very important for maintaining the normal operation of power system network. This paper presents a comprehensive review of various algorithms that have been developed and used over the last few years for the detection and classification of faults in transmission lines and mainly concentrate on following algorithm and their implementation for fault analysis such as, wavelet transform (WT), discrete wavelet transform (DWT), multi-resolution analysis (MRA), Wavelet energy entropy, artificial neural network (ANN), wavelet-neuro-fuzzy approach and support vector machine (SVM).
输电线路故障诊断的智能技术综述
本文综述了输电网故障检测、分类和定位技术的研究进展。输电线路是电力系统网络的组成部分,其主要目的是将产生的电力以最小的中断传输到用户。随着人们生活方式的日益工业化和城市化,对电力的需求日益增加,快速准确的故障分析对于提高电力系统的性能和减少电力系统的中断至关重要。输电线路故障的快速检测和清除对于维持电网的正常运行具有重要意义。本文综述了近年来在输电线路故障检测与分类中发展和使用的各种算法,重点介绍了小波变换(WT)、离散小波变换(DWT)、多分辨率分析(MRA)、小波能量熵、人工神经网络(ANN)、小波神经模糊方法和支持向量机(SVM)。
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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