Operation Management of Electric Vehicle Battery Swapping and Charging Systems: A Bilevel Optimization Approach

IF 7.9 1区 工程技术 Q1 ENGINEERING, CIVIL IEEE Transactions on Intelligent Transportation Systems Pub Date : 2022-10-18 DOI:10.1109/TITS.2022.3211883
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引用次数: 4

Abstract

This paper studies optimal day-ahead scheduling of a battery swapping and charging system (BSCS) for electric vehicles (EVs) from a new perspective of multiple decision makers. It is considered that the BSCS locally incorporates the battery swapping and charging processes, and the two processes are managed by two operators, called a battery swapping operator (BSO) and a battery charging operator (BCO), respectively. Our main contribution is to propose a bilevel model where the BSO acts as the leader to receive and serve the battery swapping requests from EV users, and the BCO acts as the follower to interact with the grid and control battery charging and discharging power. We reformulate the bilevel optimization problem into an equivalent single-level problem that is a nonconvex mixed-integer nonlinear program (MINLP), and its size can easily become very large. To solve the problem efficiently, we develop a new heuristic composed of two parts, i.e., an estimation of the integer solution and an algorithm based on the alternating direction method (ADM). The results show that the proposed heuristic performs well in solving large-scale problems, providing close-to-optimal solutions quickly. In addition, compared to a social welfare maximization model that follows most existing related works, the proposed bilevel model can increase the number of swapped-out batteries by 35% and the batteries’ average energy state by 6%, improving the quality of battery swapping services.
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电动汽车电池换电系统的运行管理:一种双层优化方法
本文从多个决策者的新角度研究了电动汽车电池交换和充电系统的最优日前调度。认为BSCS本地包含电池交换和充电过程,这两个过程由两个操作员管理,分别称为电池交换操作员(BSO)和电池充电操作员(BCO)。我们的主要贡献是提出了一个双层模型,其中BSO作为领导者接收和服务电动汽车用户的电池交换请求,BCO作为追随者与电网互动并控制电池充电和放电功率。我们将双层优化问题重新表述为一个等价的单层问题,该问题是一个非凸混合整数非线性规划(MINLP),其大小很容易变得很大。为了有效地解决这个问题,我们开发了一种新的启发式算法,它由两部分组成,即整数解的估计和基于交替方向法的算法。结果表明,所提出的启发式算法在求解大规模问题时表现良好,能够快速提供接近最优的解。此外,与遵循大多数现有相关工作的社会福利最大化模型相比,所提出的双层模型可以将交换电池的数量增加35%,电池的平均能量状态增加6%,从而提高电池交换服务的质量。
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来源期刊
IEEE Transactions on Intelligent Transportation Systems
IEEE Transactions on Intelligent Transportation Systems 工程技术-工程:电子与电气
CiteScore
14.80
自引率
12.90%
发文量
1872
审稿时长
7.5 months
期刊介绍: The theoretical, experimental and operational aspects of electrical and electronics engineering and information technologies as applied to Intelligent Transportation Systems (ITS). Intelligent Transportation Systems are defined as those systems utilizing synergistic technologies and systems engineering concepts to develop and improve transportation systems of all kinds. The scope of this interdisciplinary activity includes the promotion, consolidation and coordination of ITS technical activities among IEEE entities, and providing a focus for cooperative activities, both internally and externally.
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Table of Contents IEEE Intelligent Transportation Systems Society Information Scanning the Issue IEEE INTELLIGENT TRANSPORTATION SYSTEMS SOCIETY Time-Aware and Direction-Constrained Collective Spatial Keyword Query
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