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Real-time stochastic operation strategy of a microgrid using approximate dynamic programming-based spatiotemporal decomposition approach

机译:基于近似动态规划的时空分解方法的微电网实时随机操作策略

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摘要

This study focuses on the real-time operation of a microgrid (MG). A novel approximate dynamic programming based spatiotemporal decomposition approach is developed to incorporate efficient management of distributed energy storage systems into MG real-time operation while considering uncertainties in renewable generation. The original dynamic energy management problem is decomposed into single-period and single-unit sub-problems, and the value functions are used to describe the interaction among the sub-problems. A two-stage procedure is further designed for the real-time decisions of those sub-problems. In the first stage, empirical data is utilised offline to approximate the value functions. Then in the second stage, each sub-problem can make immediate and independent decision in both temporal and spatial dimensions to mitigate adverse effects of intermittent renewable generation in a MG. No central operator intervention is required, and the near optimal decisions can be obtained at a very fast speed. Case studies based on a six-bus MG and an actual island MG are conducted to demonstrate the effectiveness of the proposed algorithm.
机译:这项研究的重点是微电网(MG)的实时运行。开发了一种新颖的基于近似动态规划的时空分解方法,将分布式储能系统的有效管理纳入MG实时运行,同时考虑了可再生能源发电的不确定性。将原始的动态能源管理问题分解为单周期和单单元子问题,并使用值函数描述子问题之间的相互作用。还针对这些子问题的实时决策设计了一个两阶段过程。在第一阶段,经验数据被离线使用以近似值函数。然后在第二阶段,每个子问题都可以在时间和空间维度上做出即时且独立的决策,以减轻MG中间歇性可再生发电的不利影响。不需要中央操作员干预,并且可以以非常快的速度获得接近最佳的决策。进行了基于六辆公共汽车的MG和一个实际的岛屿MG的案例研究,以证明所提出算法的有效性。

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