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Economic battery sizing and power dispatch in a grid-connected charging station using convex method

机译:使用凸法的电网连接充电站经济电池尺寸和功率调度

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Optimal utilization of storage devices consists of Battery Energy Storage System (BESS), Electric Vehicles (EVs) alongside applying Demand Side Management (DSM) strategies, created many opportunities consist of reducing cost and increasing penetration rate of renewable energy sources (RESs) in a distribution network. This paper presents, mixed-integer linear programming (MILP) framework-based model to evaluate operating and trading costs of a charging station integrated with PV, BESS, and building considering: (i) a K-means clustering-based algorithm for estimating the PV generation power, (ii) Holt-Winter method for predicting the building demand for a day, (iii) V2G (vehicle to grid) and V2B (vehicle to building) capabilities of EVs, (iv) the effects of power trading between the charging station with the MGs and utility grid in different price rates based on the future market, (v) the impacts of the using the BESS in optimal capacity, (vi) utilization of a DSM strategy for building demand by shifting the non-important demand to the optimal time. Bilateral power flow between the electrical line caused to make the problem formulation as a non-convex. To deal with this challenge, the convex relaxation method is used to transform the problem from MILP to a linear programming (LP) model. To assess the effects of the proposed scheduling scheme on the total costs of the charging station, seven different scenarios are discussed and solved by the convex method. The results have verified that the use of the proposed scheme improves the reliability of the system and decreases the daily operational and trading cost of the charging station and also causes to reduce the total power injected by the utility grid to the model.
机译:存储设备的最佳利用包括电池储能系统(BESS),电动车(EV)以及应用需求侧管理(DSM)策略,创造了许多机会,包括降低成本和增加可再生能源(RESS)的渗透率分销渠道。本文介绍了混合整数线性编程(MILP)基于框架的模型,以评估与PV,BESS和建筑物集成的充电站的运营和交易成本考虑:(i)基于K-Means聚类的算法,用于估算PV生成功率,(ii)HOLT-冬季方法,用于预测建筑物需求的一天,(iii)V2G(车辆到网格)和V2B(车辆到建设)EVS的能力,(iv)之间的电力交易的影响利用MGS和效用网格的充电站,基于未来市场的不同价格汇率,(v)使用BESS在最佳容量中的影响,(vi)利用DSM策略,通过转移非重要要求来建立需求到最佳时间。电线之间的双侧功率流动使得问题配制作为非凸起。为了处理这一挑战,凸松弛方法用于将问题从MILP转换为线性编程(LP)模型。为了评估所提出的调度方案对充电站的总成本的影响,通过凸法讨论和解决了七种不同的场景。结果证明,使用该方案的使用提高了系统的可靠性,并降低了充电站的日常运行和交易成本,并导致将公用电网注入到模型中注入的总功率。

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