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Network-constrained optimal bidding strategy of a plug-in electric vehicle aggregator: A stochastic/robust game theoretic approach

机译:网络约束的插电式电动汽车聚合商的最优出价策略:一种随机/鲁棒博弈论方法

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This paper presents a strategic bidding model for several price-taker plug-in electric vehicle aggregators sharing the same distribution network that participate in both day-ahead energy and ancillary services (up/down-regulation reserve) markets. Since the strategic feasible space of an aggregator depends on the actions of the other aggregators due to the limited capacity of the existing feeders, the proposed problem forms a generalized Nash equilibrium problem. The aggregators' objective is considered to be the cost of purchased energy from the day-ahead and real-time market minus the revenue from the day-ahead regulation market. A hybrid stochastic/robust optimization model is employed to deal with different uncertainties an aggregator faces in the bidding strategy problem. These uncertainties include day-ahead energy prices, day-ahead up/down-regulation prices, and real-time energy prices. Day-ahead prices are modeled by different scenarios, while real-time prices are represented by the confidence bounds. Results of a case study are shown to demonstrate the applicability and tractability of the proposed model. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提出了一种策略投标模型,该模型适用于多个共享同一配电网络,同时参与日前能源和辅助服务(上/下调储备)市场的价格插电式电动汽车聚合商。由于聚集器的战略可行性空间由于现有支线的能力有限而取决于其他聚集器的动作,因此提出的问题形成了广义纳什均衡问题。集合商的目标被认为是从日前和实时市场购买的能源成本减去日前监管市场的收入。采用混合随机/鲁棒优化模型来处理聚合商在出价策略问题中面临的不同不确定性。这些不确定因素包括日前能源价格,日前上/下调价格以及实时能源价格。日前价格是根据不同情况建模的,而实时价格则由置信区间表示。案例研究的结果表明了该模型的适用性和可处理性。 (C)2018 Elsevier Ltd.保留所有权利。

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