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Distributed model predictive control for economic dispatch of power systems with high penetration of renewable energy resources

机译:具有高可再生能源利用率的电力系统经济调度的分布式模型预测控制

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Distributed generation entities such as renewable energy sources have posed great challenges on power system economic dispatch because of their output variability and stochasticity. Accordingly, operators need to lessen unpredictable changes in scheduled generation settings by fully utilizing available forecast information in the decision-making process. This paper proposes a closed-loop algorithm for solving economic dispatch at runtime while reducing potential deviations of generation schedules. At first, a traditional centralized approach that addresses the economic dispatch problem is presented with discussions on potential enhancement enabled by model predictive control (MPC) techniques. The MPC application makes it possible for operators to address the concern of variability and stochasticity. This paper develops a dual decomposition-based distributed model predictive control (DDMPC) strategy that is compatible with consensus techniques. Different advantages of the proposed DDMPC are highlighted throughout the paper and are analyzed through simulations. The simulation results validate the advantages of the proposed DDMPC approach by comparing it with traditional techniques for economic dispatch and by another distributed method based on MPC.
机译:分布式发电实体(例如可再生能源)因其输出可变性和随机性而对电力系统的经济调度提出了巨大挑战。因此,运营商需要通过在决策过程中充分利用可用的预测信息来减少计划的发电设置中不可预测的变化。本文提出了一种闭环算法,用于在运行时解决经济调度问题,同时减少发电计划的潜在偏差。首先,介绍了解决经济调度问题的传统集中式方法,并讨论了模型预测控制(MPC)技术可实现的潜在增强。 MPC应用程序使操作员有可能解决可变性和随机性的问题。本文开发了一种与共识技术兼容的基于双重分解的分布式模型预测控制(DDMPC)策略。整篇论文重点介绍了拟议DDMPC的不同优势,并通过仿真进行了分析。仿真结果通过与传统的经济调度技术以及另一种基于MPC的分布式方法进行比较,验证了该DDMPC方法的优点。

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