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Robust multi-objective PQ scheduling for electric vehicles in flexible unbalanced distribution grids

机译:柔性不平衡配电网中电动汽车的鲁棒多目标PQ调度

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With increased penetration of distributed energy resources and electric vehicles (EVs), different EV management strategies can be used for mitigating adverse effects and supporting the distribution grid. This study proposes a robust multi-objective methodology for determining the optimal day-ahead EV charging schedule while complying with unbalanced distribution grid constraints. The proposed methodology considers partially competing objectives of an EV aggregator and the respective distribution system operator, and applies a fuzzy-based mechanism for obtaining the best-compromise solution. The robust formulation effectively considers the errors in the electricity price forecast and its influence on the EV schedule. Moreover, the impact of EV reactive power support on objective values and technical parameters is analysed both when EVs are the only flexible resources and when linked with other demand response programmes. The method is tested on a real Danish unbalanced distribution grid with 35% EV penetration to demonstrate the effectiveness of the proposed approach. It is shown that the proposed formulation guarantees an optimal EV cost as long as the price uncertainties are lower than the aggregator's conservativeness degree, and that EV reactive power improves local conditions without significantly affecting the EV cost.
机译:随着分布式能源和电动汽车(EV)的普及,可以使用不同的EV管理策略来减轻不利影响并支持配电网。这项研究提出了一种稳健的多目标方法,用于确定最佳的日前电动汽车充电时间表,同时遵守不平衡的配电网约束。所提出的方法考虑了电动汽车聚合器和各自的配电系统运营商的部分竞争目标,并应用了基于模糊的机制来获得最佳妥协解决方案。稳健的公式有效地考虑了电价预测中的误差及其对电动汽车时间表的影响。此外,当电动汽车是唯一灵活的资源以及与其他需求响应计划相关联时,都分析了电动汽车无功功率支持对目标值和技术参数的影响。在具有35%EV渗透率的真实丹麦不平衡配电网上对该方法进行了测试,以证明该方法的有效性。结果表明,只要价格不确定性低于集合商的保守程度,所提出的公式就可以保证最佳的EV成本,并且EV无功功率可以改善当地条件,而不会显着影响EV成本。

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