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Integration of distributed energy systems in micro-grid architecture for making a virtual power plant

机译:分布式能源系统在微电网架构中进行虚拟发电厂的集成

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This paper presents a novel concept for increasing the penetration level of distributed renewable energy systems into the main electricity grid. When increasing the renewable energy penetration, it is important to implement the frequency based power delivery in distributed generators and work as traditional synchronous generators. This can be achieved by improving the power processing unit of each renewable generation units to work as active generators. But in existing grid architecture, the grid frequency is controlled as one common variable over the electricity grid. With such a method, it is difficult to use frequency based power sharing in small distributed generators and participate in grid frequency control activities. In this proposed grid connected micro-grid architecture, the micro-grid is connected to the main-grid via back-to-back converter, which gives the facility to use distributed local frequency droop settings within the micro-grids and isolate the two AC grids via intermediate DC link. Frequency Droop control has been implemented in the micro-grid side of back to back converter. With this method, the small renewable generations in micro-grid can adjust their power level in response to the local frequency variations and sharing loads effectively while reducing the large power variations from the main-grid.
机译:本文提出了一种新颖的概念,用于增加分布式可再生能源系统的渗透水平进入主电网。在增加可再生能源渗透时,重要的是在分布式发电机中实现基于频率的电力传递,并作为传统的同步发电机工作。这可以通过改善每个可再生生成单元的功率处理单元来实现作为主动发生器的功率处理单元来实现。但是在现有网格架构中,电网频率被控制为电网上的一个通用变量。利用这种方法,难以在小分布式发电机中使用基于频率的功率共享,并参与网格频率控制活动。在这一提出的网格连接的微电网架构中,微电网通过背对背转换器连接到主电网,这使得设施在微网格中使用分布式局部频率下垂设置并隔离两个AC通过中间直流链路网格。频率下垂控制已经在回到后转换器的微电网侧实现。利用这种方法,微电网中的小型可再生代层可以响应于局部频率变化和有效地共享负载,同时减少来自主电网的大的功率变化。

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