微电网的非试点定向保护

Ardavan Mohammadhassani, A. Mehrizi‐Sani
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引用次数: 0

摘要

基于逆变器的孤岛微电网的保护具有挑战性,因为基于逆变器的资源(IBR)的故障电流贡献是可变的和小的,并且没有顺序电流。本文提出了一种快速、鲁棒的非导频定向保护方案来解决这一问题。该方案依赖于支持向量机(SVM)和ibr的谐波电流注入能力。对故障时用继电器测得的谐波电流进行检测,发现正反向故障时谐波电流大小相近,但方向不同。此外,在保护线路不同位置的正向故障下,谐波电流方向相似,但量级不同。使用这种方法,假定存在三种主要类型的故障(三相对地、线对线和线对地),为每个继电器训练六个支持向量机:三个作为方向元件,三个作为区域检测元件。故障是由继电器的欠压元件检测和分类的。然后,测量的谐波电流被路由到适当的方向和区域检测支持向量机,以促进适当的继电器协调。利用PSCAD/EMTDC软件对CIGRE北美中压配电基准系统在各种应急情景下的性能进行了评估。
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Nonpilot directional protection of a microgrid
Protection of an islanded inverter‐based microgrid is challenging because of variable and small fault current contribution of inverter‐based resources (IBR) and the absence of sequence currents. This paper proposes a fast and robust nonpilot directional protection scheme to address this challenge. This scheme relies on support vector machines (SVM) and the harmonic current injection capability of IBRs. Examining the harmonic currents measured by a relay during a fault shows that harmonic currents have similar magnitudes but different orientation under forward and reverse faults. Additionally, harmonic currents have similar orientation but different magnitudes under forward faults at different locations along the protected line. Using this, six SVMs are trained for each relay, given that there are three main types of faults (three‐phase‐to‐ground, line‐to‐line, and line‐to‐ground): three as directional elements and three as zone detection elements. A fault is detected and classified by the undervoltage element of a relay. Then, the measured harmonic currents are routed to the appropriate directionality and zone detection SVMs to facilitate proper relay coordination. The performance of the proposed method is evaluated on the CIGRE North American MV distribution benchmark system under various types of contingency scenarios using PSCAD/EMTDC software.
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