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Multi-objective optimal charging of plug-in electric vehicles in unbalanced distribution networks

机译:不平衡配电网中插电式电动汽车的多目标最优充电

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摘要

Plug-in electric vehicles (PEVs) as new generations of transportation systems have recently become a promising solution to mitigate emissions of greenhouse gases produced by petroleum-based vehicles. Existing power systems may face serious reliability and power quality problems in supplying emerging PEV charging loads unless the charging task is coordinated. In addition, in real world applications, most PEVs are single-phase loads supposed to be charged from residential or commercial outlets. In this paper, a multi-objective optimization framework is proposed to optimally coordinate the charging of single-phase PEVs with dynamic behavior in unbalanced three-phase distribution systems employing smart grid facilities. Objective functions include total cost of purchasing energy in a multi-tariff pricing environment as well as grid total energy losses over charging span. The objective functions are optimized subject to network security, power quality, and PEV constraints. Fuzzy memberships are used to transform differently-scaled objective functions into a same range in order to ensure the Pareto optimality of the multi-objective solution. The proposed method is tested on an unbalanced three-phase distribution system and obtained results, which are discussed in detail, confirm its efficiency in getting a solution satisfying both objective functions as well as in the speed. (C) 2015 Elsevier Ltd. All rights reserved.
机译:作为新一代运输系统的插电式电动汽车(PEV)最近已成为减少石油基汽车产生的温室气体排放的有前途的解决方案。除非协调充电任务,否则现有的电力系统在提供新兴的PEV充电负载时可能会面临严重的可靠性和电能质量问题。另外,在实际应用中,大多数PEV是单相负载,应该从住宅或商业网点充电。在本文中,提出了一种多目标优化框架,以在采用智能电网设施的不平衡三相配电系统中优化单相PEV的充电与动态行为。目标功能包括在多价定价环境中购买能源的总成本,以及整个充电期间的电网总能量损失。目标功能根据网络安全性,电能质量和PEV约束进行了优化。模糊隶属度用于将不同比例的目标函数转换为相同范围,以确保多目标解决方案的帕累托最优性。该方法在不平衡的三相配电系统上进行了测试,并获得了详细讨论的结果,证实了该方法在获得既满足目标函数又满足速度要求的解决方案方面的效率。 (C)2015 Elsevier Ltd.保留所有权利。

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