Construction, operation and control of a laboratory-scale microgrid

Zhangang Yang, C. Yanbo, Chengshan Wang
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引用次数: 17

Abstract

To provide a test facility for possible demonstrations of advanced distributed generation system integration strategies, a single-phase laboratory-scale Microgrid system is set up. Two distributed generators are included in this Microgrid, a photovoltaic simulator and a wind turbine simulator. Both of them are connected to the AC grid via flexible power electronic interface respectively. For stable collaborative operation, a battery energy storage interfaced with a bi-directional inverter is necessary in this Microgrid. In the grid-connected mode, both the distributed generators converters and the bi-directional inverter are the grid-following unit. While switching from grid-connected mode to islanded mode, the bi-directional inverter is setting the voltage and frequency of the Microgrid through absorbing or releasing energy. The operation experimental results show that the laboratory-scale Microgrid system can operate in grid-connected or islanded mode, with a seamless transfer from one mode to the other, and hence increase the reliability of energy supplies.
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实验室规模微电网的建设、运行和控制
为了为先进的分布式发电系统集成策略的可能演示提供测试设施,建立了一个单相实验室规模的微电网系统。该微电网包括两个分布式发电机,一个光伏模拟器和一个风力涡轮机模拟器。两者分别通过柔性电力电子接口接入交流电网。为了保证微电网的稳定协同运行,需要在微电网中建立电池储能与双向逆变器的接口。在并网模式下,分布式发电机组变流器和双向逆变器都是随网单元。双向逆变器在从并网模式切换到孤岛模式的过程中,通过吸收或释放能量来设定微电网的电压和频率。运行实验结果表明,实验室规模的微电网系统可以在并网或孤岛模式下运行,并且从一种模式无缝切换到另一种模式,从而提高了能源供应的可靠性。
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