arXiv:2506.20401cs.AI2025-06

利用双向充电技术优化电动车网约车与配送收益。

Smart Ride and Delivery Services with Electric Vehicles: Leveraging Bidirectional Charging for Profit Optimisation

  • 设计新模型EVOP-V2G,统筹订单选择、充放电时机与路线规划。
  • 实验显示收益比基线方法提升一倍,小规模问题接近最优,大规模可扩展。
  • 适合关注电动车运营、能源协同与智能调度的研究者和从业者。

随着电动汽车(EV)普及,网约车与配送服务正越来越多地采用电动车。与传统车辆不同,电动车续航较短,需在接单时仔细规划充电。借助近年发展的车网互动(V2G)技术——使电动车可向电网反向供电——带来了新机遇与复杂性。本文提出电动车辆定向问题带V2G(EVOP-V2G):一个以利润最大化为目标的问题,要求电动车司机在选择客户订单的同时,决定何时何地充电或放电。该问题需应对动态电价、充电站选择及路径约束。我们将其建模为混合整数规划(MIP),并提出两种近似最优的元启发式算法:一种基于进化算法(EA),另一种基于大邻域搜索(LNS)。在真实世界数据上的实验表明,本方法相较基线能将司机收益提升一倍,在小规模实例上保持近似最优性能,且在大规模场景下具有优异可扩展性。本研究展示了电动车驱动的出行系统在提升自身盈利的同时,主动支持电网运行的可行路径。

原文摘要 · Abstract (English)

With the rising popularity of electric vehicles (EVs), modern service systems, such as ride-hailing delivery services, are increasingly integrating EVs into their operations. Unlike conventional vehicles, EVs often have a shorter driving range, necessitating careful consideration of charging when fulfilling requests. With recent advances in Vehicle-to-Grid (V2G) technology - allowing EVs to also discharge energy back to the grid - new opportunities and complexities emerge. We introduce the Electric Vehicle Orienteering Problem with V2G (EVOP-V2G): a profit-maximization problem where EV drivers must select customer requests or orders while managing when and where to charge or discharge. This involves navigating dynamic electricity prices, charging station selection, and route constraints. We formulate the problem as a Mixed Integer Programming (MIP) model and propose two near-optimal metaheuristic algorithms: one evolutionary (EA) and the other based on large neighborhood search (LNS). Experiments on real-world data show our methods can double driver profits compared to baselines, while maintaining near-optimal performance on small instances and excellent scalability on larger ones. Our work highlights a promising path toward smarter, more profitable EV-based mobility systems that actively support the energy grid.

电动车智能调度车网互动收益优化

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