Making a Virtual Power Plant out of Privately Owned Electric Vehicles: From Contract Design to Scheduling

Saidur Rahman, Javier Sales-Ortiz, Omid Ardakanian
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Abstract

With the rollout of bidirectional chargers, electric vehicle (EV) battery packs can be used in lieu of utility-scale energy storage systems to support the grid. These batteries, if aggregated and coordinated at scale, will act as a virtual power plant (VPP) that could offer flexibility and other services to the grid. To realize this vision, EV owners must be incentivized to let their battery be discharged before it is charged to the desired level. In this paper, we use contract theory to design incentive-compatible, fixed-term contracts between the VPP and EV owners. Each contract defines the maximum amount of energy that can be discharged from an EV battery and exported to the grid over a certain period of time, and the compensation paid to the EV owner upon successful execution of the contract, for reducing the cycle life of their battery. We then propose an algorithm for the optimal operation of this VPP that participates in day-ahead and balancing markets. This algorithm maximizes the expected VPP profit by taking advantage of the accepted contracts that are still valid, while honoring day-ahead commitments and fulfilling the charging demand of each EV by its deadline. We show through simulation that by offering a menu of fixed-term contracts to EVs that arrive at the charging station, trading energy and scheduling EV charging according to the proposed algorithm, the VPP profitability increases by up to 12.2%, while allowing EVs to partially offset the cost of charging their battery.
私人电动汽车虚拟发电厂:从合同设计到调度
随着双向充电器的推出,电动汽车(EV)电池组可以代替公用事业规模的储能系统来支持电网。这些电池,如果在规模上聚集和协调,将作为一个虚拟发电厂(VPP),可以为电网提供灵活性和其他服务。为了实现这一愿景,必须鼓励电动汽车车主在充电到理想水平之前先将电池放电。本文运用契约理论设计了VPP与电动汽车所有者之间激励相容的定期契约。每个合同都规定了电动汽车电池在一定时间内可以释放并输出到电网的最大能量,以及在成功执行合同后向电动汽车车主支付的补偿,以减少其电池的循环寿命。然后,我们提出了一种算法,用于该VPP的最优运行,参与日前和平衡市场。该算法通过利用已接受的仍然有效的合同,同时履行前一天的承诺,并在截止日期前满足每辆电动汽车的充电需求,实现预期VPP利润最大化。仿真结果表明,通过向到达充电站的电动汽车提供固定期限合同菜单,根据所提出的算法进行能源交易并安排电动汽车充电,VPP盈利能力提高了12.2%,同时允许电动汽车部分抵消电池充电成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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