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A decentralized control strategy for optimal charging of electric vehicle fleets with congestion management

机译:拥堵管理中电动车船队最佳充电的分散控制策略

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This paper proposes a novel decentralized control strategy for the optimal charging of a large-scale fleet of Electric Vehicles (EVs). The scheduling problem aims at ensuring a cost-optimal profile of the aggregated energy demand and at satisfying the resource constraints depending both on power grid components capacity and EV locations in the distribution network. The resulting optimization problem is formulated as a quadratic programming problem with a coupling of decision variables both in the objective function and in the inequality constraints. The solution approach relies on a decentralized optimization algorithm that is based on a variant of ADMM (Alternating Direction Method of Multipliers), adapted to take into account the inequality constraints and the non-separated objective function. A simulated case study demonstrates that the approach allows achieving both the overall fleet and individual EV goals, while complying with the power grid congestion limits.
机译:本文提出了一种新的分散控制策略,用于电动汽车大型车队(EVS)的最佳充电。调度问题旨在确保聚合能量需求和满足资源限制的成本最佳配置文件,这取决于电网组件容量和分配网络中的EV位置。由此产生的优化问题作为二次编程问题,具有在目标函数和不等式约束中的决策变量的耦合。解决方案方法依赖于基于ADMM的变型的分散优化算法(乘法器的交替方向方法),适于考虑不等式约束和非分离的目标函数。模拟案例研究表明,该方法允许实现整个舰队和单个EV目标,同时遵守电网拥塞限额。

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