Analysis and Detection of Power System Network Faults with Wavelet Transform

Reena Dangi, Saroj Kandel, Varsha Sen, Vision Parajuli, Rahul Kumar Jha
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引用次数: 0

Abstract

Fault detection technique is important for enhancing protection, stability, reliability and continuity of supply. There are many fault detection techniques implemented in power system such as Fourier transform, wavelet transform, neural networks, etc. This research presents the fault identification and analysis using wavelet transform method as well as estimation of circuit breaker rating. The discrete wavelet transform is implemented for the fault identification in five bus system. Various types of line and ground faults have been considered and studied using Daubechies wavelet function. The first level decomposition is used for the fault analysis. The maximum detailed coefficients for various faults currents are analysed for the fault identification. The wavelet transform algorithm is implemented using MATLAB programming. The five-bus system is modelled in MATLAB Simulink and various faults are simulated. The switching time of fault is taken as 0.05 to 0.1 seconds. The faults have been studied at different points in the system. The fault identification method gives accurate results for different types of faults. The load flow analysis is also done for five bus system and appropriate rating of circuit breaker is estimated.
基于小波变换的电网故障分析与检测
故障检测技术对提高供电的保护性能、稳定性、可靠性和连续性具有重要意义。电力系统的故障检测技术有傅立叶变换、小波变换、神经网络等。研究了基于小波变换的故障识别与分析方法,以及断路器额定值的估计方法。将离散小波变换应用于五总线系统的故障识别。利用Daubechies小波函数对各种类型的线路和地面故障进行了考虑和研究。第一级分解用于故障分析。分析了各种故障电流的最大详细系数,用于故障识别。用MATLAB编程实现了小波变换算法。在MATLAB Simulink中对五总线系统进行了建模,并对各种故障进行了仿真。故障切换时间取0.05 ~ 0.1秒。对系统中不同位置的故障进行了研究。该方法对不同类型的故障都能给出准确的识别结果。对五母线系统进行了潮流分析,并对断路器的合适额定值进行了估计。
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