Coordinated control strategy based on network parameters for voltage sags compensating in Microgrid

Z. Lei, Xin Ai, Mingyong Cui
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引用次数: 4

Abstract

Since Microgrid located downstream in distribution network, voltage sags caused by short circuit have become common power quality events that users of Microgrid have to face. According to where the short circuits occurred, voltage sags can be divided into two categories, interior voltage sag and exterior voltage sag. Exterior voltage sag caused by short circuit taking place in distribution network, and interior one caused by short circuit taking place in Microgrid itself. Therefore the compensation of voltage sag is also adjusted according to the category of sag, as well as choosing control strategy and capacity of compensator. In this paper the characteristics of two kinds of voltage sags are analyzed, according to the analysis results coordinated control strategy of voltage sags compensation have been proposed. Mitigating the exterior voltage sags needs relatively big capacity of compensator, so that power converters in electrical vehicle charging stations build main compensator. Interior voltage sags need only small power capacity on mitigation; therefore power converters of distributed generations within Microgrid build main compensators. In this paper the power control strategy is further studied. Microgrid is natural resistant network, which means the magnitude of voltage mainly depending on active power output of compensator. According to these features, the power control strategies of P-V droop is applied on voltage sag mitigation. The strategy proposed in this paper is approved to be effective by simulation test result.
基于网络参数的微电网电压跌落补偿协调控制策略
由于微电网位于配电网下游,短路引起的电压跌落已成为微电网用户不得不面对的常见电能质量事件。根据短路发生的位置,电压骤降可分为内部电压骤降和外部电压骤降两类。配电网发生短路引起的外部电压骤降和微电网自身发生短路引起的内部电压骤降。因此,电压暂降的补偿也要根据暂降的种类、控制策略和补偿器容量的选择进行调整。本文分析了两种电压跌落的特点,并根据分析结果提出了电压跌落补偿的协调控制策略。减轻外部电压跌落需要较大容量的补偿器,因此电动汽车充电站的电源变流器设置主补偿器。内部电压跌落只需要很小的功率容量即可缓解;因此,微电网内分布式电源的变流器构成了主补偿器。本文对功率控制策略进行了进一步的研究。微电网是自然电阻网络,其电压的大小主要取决于补偿器输出的有功功率。根据这些特点,将P-V下垂的功率控制策略应用于电压暂降的缓解。仿真试验结果表明,本文提出的策略是有效的。
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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