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Distributed Model-Predictive Real-Time Optimal Operation of a Network of Smart Microgrids

机译:分布式模型 - 预测智能微电网网络的预测实时最优运行

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摘要

In this paper, we study multiple interconnected smart microgrids, and develop an efficient strategy for their internal device scheduling and energy trading. This paper achieves the following objectives. First, each microgrid holistically manages its internal devices, such as local storage systems and reactive power compensation levels, and external active/reactive energy trading (with the external grid and other microgrids) simultaneously for real-time optimization. Scenarios of social cooperation and game in interconnected microgrids are formulated as distinct objectives of the microgrids, which aim to optimize their own performance and gain benefits through energy trading. Second, microgrids of different network topologies (radial and meshed) and nominal voltages are fully incorporated. Third, a fully distributed model-predictive and computational-intelligence-based algorithm is proposed, so that microgrids' devices operate autonomously with minimum communication exchange, obviating the need for a central controller. Convergence properties of the proposed distributed algorithm are analyzed and benchmarked with a state-of-the-art distributed algorithm, and numerical simulations for different scenarios are performed demonstrating that the proposed distributed strategy can be feasibly applied to real-world microgrids.
机译:在本文中,我们研究了多个互联的智能微电网,并为其内部设备调度和能源交易开发了有效的策略。本文实现了以下目标。首先,每个Microgrid全体地管理其内部器件,例如本地存储系统和无功补偿水平,以及外部主动/无功率交易(与外部电网和其他微电网)同时进行实时优化。相互联系的微电网中社会合作和游戏的情景被制定为微普林的不同目标,其目的是通过能源交易优化自己的性能并获得利益。其次,不同网络拓扑(径向和网状)和标称电压的微电网完全结合。第三,提出了一种完全分布式的模型预测性和基于计算智能的算法,使得MicroGrids的设备具有最小通信交换的自主运行,避免了对中央控制器的需求。通过最先进的分布式算法分析和基准测试所提出的分布式算法的收敛性,并且执行不同场景的数值模拟,证明所提出的分布式策略可以对现实世界微普林进行可靠应用。

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