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Rolling Multi-Period Optimization to Control Electric Vehicle Charging in Distribution Networks

机译:滚动多周期优化控制配电网中的电动汽车充电

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摘要

The integration of electric vehicles (EVs) poses potential issues for low voltage (LV) distribution networks, such as excessive voltage deviations and overloading of equipment. Controlled EV charging is seen as one possibility for reducing, or even eliminating, these issues. The implementation of controlled charging schemes, in particular centralized schemes, can require forecasts of a number of variables, e.g., household loads, EV availability, and battery requirements. The unpredictability of individual customer behavior may, however, lead to large variations between forecast and realized behavior. This work presents a multi-period, unbalanced load flow and rolling optimization method, which focuses on controlling the rate and times at which EVs charge over a 24-h time horizon, with a minimum cost objective, subject to certain constraints. Inputs are updated and a new optimization is performed at each time step so that deviations from the initial forecast can be readily accounted for.
机译:电动汽车(EV)的集成给低压(LV)配电网络带来了潜在的问题,例如过度的电压偏差和设备过载。受控的EV充电被视为减少甚至消除这些问题的一种可能性。受控充电方案(特别是集中式方案)的实施可能需要对许多变量进行预测,例如家庭负荷,电动汽车的可用性和电池需求。但是,单个客户行为的不可预测性可能导致预测行为与实际行为之间的巨大差异。这项工作提出了一种多周期,不平衡的潮流和滚动优化方法,该方法着重于在一定约束下以最小的成本目标控制电动汽车在24小时内的充电速率和时间。在每个时间步长上更新输入并执行新的优化,以便可以容易地计算出与初始预测的偏差。

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