A Case Study For Connecting Bidirectional PEV Station for Reactive Power Support to the GLEAMM Prototype Microgrid

S. DaneshvarDehnavi, C. Negri, K. Schmitt, S. Bayne, M. Giesselmann
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引用次数: 2

Abstract

This paper presents a control strategy for reactive power support using Plug-in Electric Vehicles (PEV) as a case study for the Global Laboratory for Energy Asset Management and Manufacturing (GLEAMM) microgrid. The control topology is divided into two levels with a dynamic limitation. This Electric Vehicle (EV) station Charger has a topology including a full-bridge AC-DC rectifier and a bidirectional half-bridge DC-DC converter. In the first level, a PQ and power control are used for the AC/DC inverter and DC/DC converters, receiving the set-points for active and reactive power from the upper level. The second level is a central controller that is used to manage the reactive power at the microgrid and to provide the necessary power setpoints for the PEV. A dynamic limitation strategy is proposed to maximize the reactive power support maintaining a reasonable amount of active power to charge the EV battery, considering the maximum limitation of the AC/DC inverter. To validate the effectiveness of the proposed control strategy, simulation results from a three-phase system are simulated in Matlab/Simulink environment.
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用于无功支持的双向PEV站与GLEAMM原型微电网连接的案例研究
本文以全球能源资产管理与制造实验室(GLEAMM)微电网为例,提出了一种基于插电式电动汽车(PEV)的无功支持控制策略。控制拓扑被分为两层,并具有动态限制。这款电动汽车(EV)充电站充电器的拓扑结构包括一个全桥AC-DC整流器和一个双向半桥DC-DC转换器。在第一层,PQ和功率控制器用于AC/DC逆变器和DC/DC变换器,接收来自上层的有功和无功设定值。第二层是中央控制器,用于管理微电网的无功功率,并为PEV提供必要的功率设定值。考虑交/直流逆变器的最大限制,提出了一种动态限制策略,以最大限度地支持维持合理的有功功率来为电动汽车电池充电。为了验证所提控制策略的有效性,在Matlab/Simulink环境中对一个三相系统的仿真结果进行了仿真。
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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