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Robust Decentralized Charge Control of Electric Vehicles under Uncertainty on Inelastic Demand and Energy Pricing

机译:无间隙需求与能源定价下的不确定度强制分散电荷控制

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This paper proposes a novel robust decentralized charging strategy for large-scale EV fleets. The system incorporates multiple EVs as well as inelastic loads connected to the power grid under power flow limits. We aim at minimizing both the overall charging energy payment and the aggregated battery degradation cost of EVs while preserving the robustness of the solution against uncertainties in the price of the electricity purchased from the power grid and the demand of inelastic loads. The proposed approach relies on the so-called uncertainty set-based robust optimization. The resulting charge scheduling problem is formulated as a tractable quadratic programming problem where all the EVs' decisions are coupled via the grid resource-sharing constraints and the robust counterpart supporting constraints. We adopt an extended Jacobi-Proximal Alternating Direction Method of Multipliers algorithm to solve effectively the formulated scheduling problem in a decentralized fashion, thus allowing the method applicability to large scale fleets. Simulations of a realistic case study show that the proposed approach not only reduces the costs of the EV fleet, but also maintains the robustness of the solution against perturbations in different uncertain parameters, which is beneficial for both EVs' users and the power grid.
机译:本文提出了一种用于大型EV舰队的新型强大的分散计费策略。该系统包括多个EV以及电源流量限制下连接到电网的无弹性负载。我们旨在最大限度地减少EVS的整体充电能源支付和聚合电池降低成本,同时保持解决方案的稳健性,以防止从电网购买的电力价格和无弹性负荷的需求的价格中的不确定性。所提出的方法依赖于所谓的不确定性集基础的鲁棒优化。得到的电荷调度问题被制定为易于二次编程问题,其中所有EVS的决策都通过网格资源共享约束和强大的对应物支持约束来耦合。我们采用乘法器算法的扩展Jacobi-近端交替方向方法,以分散的方式有效地解决配方调度问题,从而允许该方法适用于大规模车队。仿真案例研究表明,建议的方法不仅降低了EV舰队的成本,而且还保持了对不同不确定参数的扰动的鲁棒性,这对EVS的用户和电网都有利。

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