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Active Distribution System Reinforcement Planning With EV Charging Stations—Part I: Uncertainty Modeling and Problem Formulation

机译:EV充电站的主动分配系统强化规划 - 第一部分:不确定性建模与问题制定

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Due to the associated uncertainties, the large-scale deployment of electric vehicles (EVs) and renewable distributed generation is a major challenge faced by the modern distribution systems. The first part of this two-paper series proposes a scenario-based stochastic model for the multistage joint reinforcement planning of the distribution systems and the electric vehicle charging stations (EVCSs). The historical EV charging demand is first determined using the Markovian analysis of EV driving patterns and charging demand. A scenario matrix, based on the heuristic moment matching method, is then generated to characterize the stochastic features and correlation among historical wind and photovoltaic generation, and conventional loads and EV demands. The scenario matrix is then utilized to formulate the expansion planning framework, aiming at the minimization of the investment and operational costs. The proposed expansion plan determines the optimal construction/reinforcement of substations, EVCSs, and feeders, in addition to the placement of wind and photovoltaic generators, and capacitor banks over the multi-stage planning horizon. In the second companion paper, the effectiveness and scalability of the proposed model is assessed through case studies in the 18-bus and the IEEE 123-bus distribution systems, respectively.
机译:由于相关的不确定性,电动车辆(EVS)和可再生分布式发电的大规模部署是现代分销系统面临的主要挑战。本两文系列的第一部分提出了一种基于场景的随机模型,用于分配系统的多级接头加固规划和电动车辆充电站(EVCS)。首先使用Marvian驾驶模式和充电需求进行Markovian分析来确定历史EV充电需求。然后生成基于启发式时刻匹配方法的场景矩阵,以表征历史风和光伏发电的随机特征和相关性,以及传统的负载和EV要求。然后利用方案矩阵来制定扩展规划框架,旨在最大限度地减少投资和运营成本。拟议的扩张计划除了放置风和光伏发电机外,还确定了变电站,EVCS和饲养者的最佳结构/加固,以及在多阶段规划地平线上的电容库。在第二次伴文中,通过分别在18总线和IEEE 123总线分配系统中的案例研究评估所提出的模型的有效性和可扩展性。

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