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Wavelet Based Feature Analysis of Fault Signals in a Microgrid

机译:基于小波的微电网故障信号特征分析

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摘要

Integration of renewable energy resources has been facilitated by the evolution of existing electrical power networks into Smartgrid. Increasing penetration of Distributed Energy Resources (DERs) at the distribution network has made it hard to control and manage the grid efficiently. One of the numerous technical issues, related to the integration of DERs in a distribution network is to come up with an effective protection scheme. Traditional protection scheme fails to perform due to significant variations in fault current levels during grid-connected and islanded mode of operation. This paper presents a wavelet based method that does not rely on the fault current level for fault detection in a microgrid. The proposed technique decomposes the fault current signal using wavelet transform to obtain important fault current features. These features include difference in energy, entropy and standard deviation of pre-fault and post-fault current cycles. The proposed method is tested for faults in a modified IEEE 13-Node test feeder, consisting of renewable energy based DERs in islanded and grid-connected modes. The test results indicate that the proposed strategy is able to distinguish between faults and disturbances in the system which can lead to the implementation of an effective protection scheme for microgrids.
机译:现有电力网络向Smartgrid的演进促进了可再生能源的整合。配电网络中分布式能源(DER)的渗透不断增加,这使得有效控制和管理电网变得困难。与DER在配电网中的集成有关的众多技术问题之一是提出有效的保护方案。传统保护方案由于在并网和孤岛运行模式期间故障电流水平的显着变化而无法执行。本文提出了一种基于小波的方法,该方法不依赖故障电流水平进行微电网中的故障检测。提出的技术利用小波变换分解故障电流信号以获得重要的故障电流特征。这些特征包括故障前和故障后电流周期的能量差,熵和标准偏差。在改进的IEEE 13节点测试馈线中对提出的方法进行了测试,该馈线由孤岛和并网模式下的基于可再生能源的DER组成。测试结果表明,所提出的策略能够区分系统中的故障和干扰,从而可以实施有效的微电网保护方案。

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