Fault Detection and Segmentation in Medium Voltage AC Microgrid by Using Differential Protection Principle

Sittinan Muanchaona, J. Singh
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Abstract

A microgrid is composed of a variety of energy components: distributed generators (DG), especially renewable energy and energy storage systems. Integration of DGs can significantly improve the power system's reliability, reducing the power outage duration. A distribution medium voltage (MV) system without DGs is essentially a single-point feeding source network, with overcurrent relays frequently employed to detect a fault. Overcurrent relays operate as primary and backup protection with current-graded time in a typical radial distribution network protection method. On the other hand, the protection aspect becomes one of major issues when DGs are integrated into the power system. In a microgrid, the fault current characteristic differs in isolated and grid-connected modes due to differences in power network topology, making the microgrid protection approach more difficult. The protection strategy in the microgrid should be designed to provide optimal protection to the component and the DGs based on the location of the fault occurrence, bidirectional power flow, change in voltage profile, location of DGs, type of DGs such as synchronous or inverter based DGs and uncertainty in the DGs. Therefore, this paper addresses the challenges of microgrid protection by proposing a methodology to detect and segment the fault area based on the differential protection principle. The performance of the proposed method is assessed by DIgSILENT PowerFactory simulation. The simulation results show that the differential protection-based method is able to detect and isolate the fault incident as smallest as possible.
基于差动保护原理的中压交流微电网故障检测与分割
微电网由多种能源组件组成:分布式发电机(DG),特别是可再生能源和储能系统。dg的集成可以显著提高电力系统的可靠性,减少停电时间。没有dg的配电中压(MV)系统本质上是一个单点馈电源网络,经常使用过流继电器来检测故障。在典型的径向配电网保护方法中,过流继电器作为电流分级时间的主备保护。另一方面,保护方面的问题成为配电系统集成的主要问题之一。在微电网中,由于电网拓扑结构的不同,隔离模式和并网模式下的故障电流特征不同,使得微电网保护方法更加困难。微电网中的保护策略应根据故障发生的位置、双向潮流、电压分布的变化、dg的位置、dg的类型(如同步dg或逆变dg)以及dg的不确定性来设计,为组件和dg提供最优保护。因此,本文提出了一种基于差动保护原理的故障区域检测和分割方法,解决了微电网保护面临的挑战。通过DIgSILENT PowerFactory仿真对该方法的性能进行了评估。仿真结果表明,基于差动保护的方法能够尽可能小地检测和隔离故障事件。
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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