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Optimal Day-ahead Dispatch of Virtual Power Plant with Aggregated Multi-type Electric Vehicles via a Stackelberg Game Approach

机译:通过Stackelberg游戏方法,具有聚集的多型电动汽车的虚拟电厂的最佳日本派遣

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Disorderly charging of large-scale electric vehicles (EVs) would result in the peak electricity consumption, damaging the safe and economic operation of power systems. As an important managing technique of distributed energy resources (DERs), virtual power plant (VPP) can effectively improve the charging strategies of EVs. With this, this paper proposes a bi-level optimal scheduling model of VPP with aggregated plug-in electric vehicles (PEVs) and a battery swapping station, and to optimize the charging/discharging of PEVs and batteries in battery swapping station. Based on the Stackelberg game, the leader is a VPP operator. It guides the charging/discharging behavior of PEVs using reasonable prices. As the followers, PEV owners adjust their charging/discharging strategies based on the leader’s price information. The Karush-Kuhn-Tucker (KKT) conditions are used to transform the bi-level model into a single-level formulation. Numerical results demonstrate that the proposed model can effectively improve overall economic benefits of the VPP, while respecting the interest of each PEV owners. Besides, charging/discharging of EVs are improved sustaining the safe operation of power systems.
机译:大型电动车辆(EVS)的无序充电会导致峰值电量消耗,损坏电力系统的安全和经济运行。作为分布式能源(DERS)的重要管理技术,虚拟电厂(VPP)可以有效地提高EVS的充电策略。由此,本文提出了具有聚集插入电动车辆(PEV)和电池交换站的VPP的双层最佳调度模型,并优化电池交换站PEV和电池的充电/放电。基于Stackelberg游戏,领导者是VPP运营商。它指导了PEVS的充电/放电行为使用合理的价格。作为追随者,PEV所有者根据领导的价格信息调整其充电/放电策略。 KARUSH-KUHN-TUCKER(KKT)条件用于将双级模型转换为单级配方。数值结果表明,拟议的模型可以有效地提高VPP的整体经济效益,同时尊重每个PEV所有者的利益。此外,EVS的充电/放电改善了电力系统的安全操作。

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