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Online optimal variable charge-rate coordination of plug-in electric vehicles to maximize customer satisfaction and improve grid performance

机译:在线优化插电式电动汽车的可变充电率协调,以最大程度地提高客户满意度并改善电网性能

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Participation of plug-in electric vehicles (PEVs) is expected to grow in emerging smart grids. A strategy to overcome potential grid overloading caused by large penetrations of PEVs is to optimize their battery charge-rates to fully explore grid capacity and maximize the customer satisfaction for all PEV owners. This paper proposes an online dynamically optimized algorithm for optimal variable charge-rate scheduling of PEVs based on coordinated aggregated particle swarm optimization (CAPSO). The online algorithm is updated at regular intervals of Delta t=5 min to maximize the customers' satisfactions for all PEV owners based on their requested plug-out times, requested battery state of charges (SOCReq) and willingness to pay the higher charging energy prices. The algorithm also ensures that the distribution transformer is not overloaded while grid losses and node voltage deviations are minimized. Simulation results for uncoordinated PEV charging as well as CAPSO with fixed charge-rate coordination (FCC) and variable charge-rate coordination (VCC) strategies are compared for a 449-node network with different levels of PEV penetrations. The key contributions are optimal VCC of PEVs considering battery modeling, chargers' efficiencies and customer satisfaction based on requested plug-out times, driving pattern, desired final SOCs and their interest to pay for energy at a higher rate. (C) 2016 Elsevier B.V. All rights reserved.
机译:插电式电动汽车(PEV)的参与度有望在新兴的智能电网中增长。克服由PEV的大渗透率引起的潜在电网过载的策略是优化其电池充电率,以充分利用电网容量,并使所有PEV所有者的客户满意度最大化。提出了一种基于协同聚集粒子群算法(CAPSO)的电动汽车最优可变费率调度在线动态优化算法。在线算法会以Delta t = 5分钟的固定间隔进行更新,以根据所有要求的插拔时间,要求的电池充电状态(SOCReq)以及愿意支付更高的充电能源价格的方式,使所有PEV所有者的客户满意度最大化。该算法还确保配电变压器不会过载,同时使电网损耗和节点电压偏差最小。针对具有不同PEV渗透水平的449节点网络,比较了不协调PEV充电以及具有固定充电速率协调(FCC)和可变充电速率协调(VCC)策略的CAPSO的仿真结果。考虑到电池建模,充电器的效率和基于要求的插入时间,驱动方式,所需的最终SOC及其希望以更高的价格支付能源的兴趣,PEV的最佳VCC是关键。 (C)2016 Elsevier B.V.保留所有权利。

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