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Two-Layer Game Theoretic Microgrid Capacity Optimization Considering Uncertainty of Renewable Energy

机译:考虑可再生能源不确定性的双层游戏理论微电网能量优化

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摘要

Configuration and operation are key to the successful deployment of a renewable energy integrated microgrid. Considering that wind generator, photovoltaic array, and storage battery may belong to different investors in market-oriented operation modes, game theory can be used to tackle the conflict between the overall optimal operation of the microgrid and the maximum profit of each investor. To handle the tradeoff among multiple investors and the uncertainties in wind and solar power, this article develops a new two-layer game model, where a planned output game and a capacity allocation game are considered. The inner layer is a master-slave game to optimize the planned renewable energy output, which is used to predetermine the operation strategy of the microgrid under the initial capacity allocation. In the outer layer, based on the optimized planned output obtained from the inner layer, a noncooperative game and a cooperative sequential game dominated by wind-photovoltaic cooperative alliance are formed to determine the optimal capacity allocations. The equilibrium solution, achieved from the iterative optimization between inner and outer layers, determines the optimal capacity allocation of the microgrid. The effectiveness of the proposed model is verified using a case study of a wind/photovoltaic/battery/gas microgrid.
机译:配置和操作是成功部署可再生能量集成Microgrid的关键。考虑到风力发电机,光伏阵列和蓄电池可以属于不同投资者,以市场为导向的运行模式,游戏理论可用于解决微电网的整体最佳运行与每个投资者的最大利润之间的冲突。为了处理多个投资者之间的权衡和风力和太阳能的不确定性,本文开发了一个新的双层游戏模型,其中考虑了计划的输出游戏和容量分配游戏。内层是主从游戏,以优化计划的可再生能量输出,该输出用于预先确定在初始容量分配下微电网的操作策略。在外层中,基于从内层获得的优化的计划输出,形成非线化游戏和由风光 - 光伏协作联盟主导的合作顺序游戏以确定最佳容量分配。从内层和外层之间的迭代优化实现的平衡溶液决定了微电网的最佳能力分配。使用风/光伏/电池/气体微电池的案例研究验证所提出的模型的有效性。

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