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A unified configurational optimization framework for battery swapping and charging stations considering electric vehicle uncertainty

机译:考虑电动车辆不确定性的电池交换和充电站的统一配置优化框架

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Used batteries from electric vehicles (EVs) can be utilized as retired battery energy storage systems (RBESSs) at battery swapping and charging stations (BSCSs) to enhance their economic profitability and operational flexibility, by responding to the market incentive mechanism and interacting with EV batteries. In order to maximize the annual income of a BSCS, in this paper, we establish a double-stage coordinative decision-making (DCD) framework for the BSCS configuration, using the distributed robust optimization (DRO) approach for multi-timescale battery inventories. More specifically, in the DRO approach, the probability of each discrete EV battery swapping demand is carefully modeled to address the uncertainty in BSCS operations. The proposed DCD framework is able to enhance the flexibility of BSCS scheduling through systematically and optimally incorporating RBESSs; at the same time, it can also significantly improve regional load characteristics to accommodate the needs of the main electric grid. The effectiveness and superiority of the proposed DCD framework for BSCS is tested and verified through extensive simulation and comparison studies. The proposed integral optimization approach will be able to facilitate safe, reliable and economic operations of the next-generation power grid, whilst enhancing economics and utilization of retired EV batteries. (C) 2020 Elsevier Ltd. All rights reserved.
机译:来自电动车辆(EVS)的使用电池可用于电池交换和充电站(BSCS)的退休电池储能系统(RBSS),以通过响应市场激励机制和与EV电池交互来提高其经济盈利能力和操作灵活性。为了最大限度地提高BSC的年收入,在本文中,我们为BSCS配置建立了一个双级协调决策(DCD)框架,采用了用于多时间尺度电池库存的分布式鲁棒优化(DRO)方法。更具体地,在DRO方法中,每个离散的EV电池交换需求的概率被仔细建模,以解决BSCS操作中的不确定性。所提出的DCD框架能够通过系统地和最佳地结合RBESS来增强BSCS调度的灵活性;同时,它还可以显着改善区域负荷特性以适应主电网的需求。通过广泛的仿真和比较研究测试并验证了BSC的拟议DCD框架的有效性和优越性。拟议的整体优化方法将能够促进下一代电网的安全,可靠和经济的运营,同时增强经济性和利用退休的电池。 (c)2020 elestvier有限公司保留所有权利。

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