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Data-Centric Hierarchical Distributed Model Predictive Control for Smart Grid Energy Management

机译:智能电网能源管理的以数据为中心的分层分布式模型预测控制

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The smart grid energy management with variable renewable energy resources presents many challenges to the grid operation. An optimized solution to manage the available resources is necessary to achieve reliable operation. This paper presents the hierarchical distributed model predictive control (HDMPC) to solve the energy management problem in the multitime frame and multilayer optimization strategy. The HDMPC combines the concept of enabling the optimization over long time-horizon for a centralized supervisory management (SM) layer and another short time-horizon during high-power variability for a distributed coordination management (CM) layer. The information exchange and interoperability between different layers are provided through the data-centric communication approach. The SM (upper layer) works to present the grid operator with certain operational plans and gives the guidelines to the CM (lower layer). The CM has the responsibility to coordinate the relationship between the centralized optimization objectives and the physical power system layer. The proposed HDMPC control was verified both numerically and experimentally. The obtained simulation results show that the control strategy proposed here is successful and combines the benefits of both the centralized and distributed control for a global solution of the grid operation problem. The experimental results demonstrate the feasibility of the real-time implementation of the proposed system for deployment to control future smart grid assets.
机译:具有可变可再生能源的智能电网能源管理对电网运营提出了许多挑战。需要一种优化的解决方案来管理可用资源,以实现可靠的运行。本文提出了层次化的分布式模型预测控制(HDMPC),以解决多时间框架中的能源管理问题和多层优化策略。 HDMPC结合了以下概念:在集中监控管理(SM)层的较长时间范围内实现优化,而在分布式协调管理(CM)层的高功率可变期间实现另一个短时间范围内的优化。通过以数据为中心的通信方法,可以提供不同层之间的信息交换和互操作性。 SM(上层)可向电网运营商提供某些运营计划,并为CM(下层)提供指导。 CM负责协调集中式优化目标与物理电源系统层之间的关系。所提出的HDMPC控制已通过数值和实验验证。所获得的仿真结果表明,本文提出的控制策略是成功的,并且结合了集中控制和分布式控制的优点,从而可以全局解决电网运行问题。实验结果证明了实时实施所提出的系统进行部署以控制未来的智能电网资产的可行性。

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