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Grid-constrained optimal predictive power dispatch in large multi-level power systems with renewable energy sources, and storage devices

机译:具有可再生能源和存储设备的大型多级电力系统中受电网约束的最佳预测电力调度

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This paper presents a novel approach for the predictive power dispatch of a large number of power system units that can be diverse in their power as well as power ramp ratings and can be dispersed both in distribution grids and transmission networks. In particular, the involved unit portfolio consists of Renewable Energy sources (RES), conventional generation sources, flexible loads, and storage devices, which are modeled using the Power Nodes modeling framework. Unlike aggregation methods which do not consider the position of a power system unit in the grid topology, our centralized optimal power dispatch strategy with a combined AC Optimal Power Flow (AC-OPF) explicitly accounts for grid constraints. The multi-period dispatch problem induced by the energy storage devices is solved by a predictive power dispatch scheme based on Model Predictive Control (MPC). We further propose a distributed three-stage optimization process that hierarchically divides the original dispatch problem into independent sub-problems according to the grid structure which are solvable in parallel. As a result, we obtain a significant complexity reduction with respect to the original centralized dispatch optimization problem, such that we can calculate the power dispatch of a large number of units with reasonable computational effort. Finally, based on benchmark grids of different sizes, we demonstrate the improved performance of the here proposed distributed approach over the original centralized dispatch optimization approach and show that the simulation time is reduced for large systems as compared with the centralized approach.
机译:本文提出了一种用于大量电力系统单元的预测功率分配的新颖方法,这些单元的功率和功率斜率额定值可以不同,并且可以分散在配电网和输电网络中。特别是,涉及的单位组合包括可再生能源(RES),常规发电源,柔性负载和存储设备,它们使用Power Nodes建模框架进行建模。与不考虑电网拓扑中电力系统单元位置的聚合方法不同,我们的集中式最优功率分配策略与组合的AC最优功率流(AC-OPF)明确考虑了电网约束。通过基于模型预测控制(MPC)的预测功率分配方案,解决了由储能设备引起的多周期分配问题。我们进一步提出了一个分布式的三阶段优化过程,该过程根据网格结构可以将原始调度问题按层次结构划分为多个独立的子问题,这些问题可以并行求解。结果,相对于原始的集中式调度优化问题,我们获得了显着的复杂度降低,从而我们可以用合理的计算量来计算大量机组的功率分配。最后,基于不同大小的基准网格,我们证明了本文提出的分布式方法相对于原始集中式调度优化方法的改进性能,并表明与集中式方法相比,大型系统的仿真时间有所减少。

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