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A distributed control based on finite-time consensus algorithm for the cluster of DC microgrids

机译:基于有限时间共识算法的直流微电网集群分布式控制

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The cluster of DC microgrids consisting of multiple interconnected DC microgrids has great potential for improving the reliability and reducing the cost of power generation. Coordinated control is a common method often used to achieve this potential. This paper proposes a distributed coordination control strategy that overcomes a series of problems of centralized control to ensure stable and economical operation of DC microgrids. In this control strategy, based on the hierarchical structure, voltage secondary control and global generation cost control are introduced on the basis of original droop control. Each power generation unit only interacts with neighboring communication units through a finite-time consensus algorithm. The ultimate goal is to achieve multiple control goals including voltage stability and minimum global generation costs. This control method has high reliability, which does not require a central controller and only implements the strategy based on information exchange between neighbor units. At the same time, the finite-time consensus algorithm and communication sequence used in this paper are effective to speed up the calculation and reduce the control time. The proposed control strategy is verified in a system containing four DC microgrids. By using the Matlab/Simulink simulation platform, the corresponding simulation cases are performed for different scenarios such as plug-and-play and load fluctuation.
机译:由多个互连的直流微电网组成的直流微电网集群具有巨大的潜力,可以提高可靠性并降低发电成本。协调控制是通常用于实现这一潜力的常用方法。本文提出了一种分布式协调控制策略,克服了集中控制的一系列问题,以确保直流微电网的稳定和经济运行。在这种控制策略中,基于分层结构,在原始下垂控制的基础上引入了电压二次控制和全局发电成本控制。每个发电单元仅通过有限时间共识算法与相邻的通信单元进行交互。最终目标是实现多个控制目标,包括电压稳定性和最低的全球发电成本。该控制方法具有很高的可靠性,不需要中央控制器,仅基于相邻单元之间的信息交换来实现策略。同时,本文所使用的有限时间共识算法和通信序列可以有效地加快计算速度,减少控制时间。在包含四个直流微电网的系统中验证了所提出的控制策略。通过使用Matlab / Simulink仿真平台,可以针对即插即用和负载波动等不同场景执行相应的仿真案例。

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