Comparative Realistic Objectives Oriented Optimization Framework for EV Charging Scheduling in a Distribution System

Hilmi Cihan Güldorum, Ayşe Kübra Erenoğlu, O. Erdinç, İbrahim Şengör
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Abstract

The integration of large-scale electric vehicles (EVs) into the distribution system has emerged as a critical topic of research with the proliferation of EVs over the years. To mitigate the negative effects of EVs on the distribution system (DS), in this study, the optimal operation of an EVPL is investigated with a model in the form of mixed-integer quadratic constrained programming (MIQCP) that aims to minimize a variety of realistic objectives including active power losses, charging cost or voltage deviations while taking DS constraints into account. Also, uncertain behavior of the EVPL has been considered via machine-learning based forecasting by using historic data. The effectiveness of the proposed model has been evaluated using a 33-bus test system with 15-minute time granularity and compared to models that had various objective functions.
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面向比较现实目标的配电网电动汽车充电调度优化框架
近年来,随着电动汽车的普及,大型电动汽车与配电系统的集成已成为一个重要的研究课题。为了减轻电动汽车对配电系统的负面影响,本研究采用混合整数二次约束规划(MIQCP)形式的模型研究了电动汽车配电系统的最优运行,该模型旨在最大限度地减少各种现实目标,包括有功功率损耗、充电成本或电压偏差,同时考虑了DS约束。此外,通过使用历史数据进行基于机器学习的预测,考虑了EVPL的不确定性行为。使用具有15分钟时间粒度的33总线测试系统评估了所提出模型的有效性,并与具有各种目标函数的模型进行了比较。
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