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Distribution Locational Marginal Pricing for Optimal Electric Vehicle Charging Management

机译:最优电动汽车充电管理的分布位置边际定价

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This paper presents an integrated distribution locational marginal pricing (DLMP) method designed to alleviate congestion induced by electric vehicle (EV) loads in future power systems. In the proposed approach, the distribution system operator (DSO) determines distribution locational marginal prices (DLMPs) by solving the social welfare optimization of the electric distribution system which considers EV aggregators as price takers in the local DSO market and demand price elasticity. Nonlinear optimization has been used to solve the social welfare optimization problem in order to obtain the DLMPs. The efficacy of the proposed approach was demonstrated by using the bus 4 distribution system of the Roy Billinton Test System (RBTS) and Danish driving data. The case study results show that the integrated DLMP methodology can successfully alleviate the congestion caused by EV loads. It is also shown that the socially optimal charging schedule can be implemented through a decentralized mechanism where loads respond autonomously to the posted DLMPs by maximizing their individual net surplus.
机译:本文提出了一种集成分布位置边际定价(DLMP)方法,旨在缓解未来电力系统中电动汽车(EV)负载引起的拥堵。在提出的方法中,配电系统运营商(DSO)通过解决配电系统的社会福利优化问题来确定配电地点边际价格(DLMP),该优化过程将电动汽车集成商视为本地DSO市场中的价格接受者,并具有价格弹性。非线性优化已被用来解决社会福利优化问题,以获得DLMP。通过使用Roy Billinton测试系统(RBTS)的4总线分配系统和丹麦的驾驶数据证明了该方法的有效性。案例研究结果表明,集成的DLMP方法可以成功缓解电动汽车负荷引起的交通拥堵。还表明,可以通过一种分散机制来实现社会最优的收费计划,在这种机制中,负载可以通过最大化其单个净盈余来自动响应已过帐的DLMP。

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