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A bi-objective model for location planning of electric vehicle charging stations with GPS trajectory data

机译:GPS轨迹数据的电动汽车充电站位置规划的双目标模型

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The construction of charging stations is a crucial factor in promoting electric vehicles (EV). It is necessary to construct EV charging stations in advance to encourage drivers to prefer EVs. This paper addresses the EV charging stations location problem in a city with low EV penetration rate. We divide the city into a grid with several same cells. The potential charging demand of each cell is estimated with the use of GPS trajectory data from thousands of traveling vehicles in the network. We present a cell-based model to decide locations, capacity options, and service types for EV charging stations that can cover all potential charging demand. The problem is formulated as a bi-objective mixed-integer mathematical model, with one objective related to minimizing cost and the other related to maximizing service quality. To solve it, we propose a hybrid evolutionary algorithm that combines the non-dominated sorting genetic algorithm-II (NSGA-II) with linear programming and neighborhood search. We conduct computational experiments on randomly generated instances to evaluate the performance of the proposed hybrid NSGA-II. Finally, we present a case study designing an EV charging station network for Shenzhen, China with real GPS trajectory data. We also offer some management insights of EV charging stations construction based on sensitivity analysis.
机译:充电站的建设是推广电动汽车(EV)的关键因素。必须预先建造电动汽车充电站,以鼓励驾驶员偏爱电动汽车。本文解决了在电动汽车普及率较低的城市中的电动汽车充电站位置问题。我们将城市划分为几个相同单元的网格。通过使用来自网络中成千上万辆行驶中的车辆的GPS轨迹数据来估算每个单元的潜在充电需求。我们提出了一个基于单元的模型来确定可满足所有潜在充电需求的EV充电站的位置,容量选项和服务类型。该问题被表述为一个双目标混合整数数学模型,其中一个目标与最小化成本有关,而另一个目标与最大化服务质量有关。为了解决这个问题,我们提出了一种混合进化算法,将非控制分类遗传算法-II(NSGA-II)与线性规划和邻域搜索相结合。我们对随机生成的实例进行计算实验,以评估所提出的混合NSGA-II的性能。最后,我们将提供一个案例研究,为中国深圳设计一个具有真实GPS轨迹数据的EV充电站网络。我们还将基于敏感性分析提供一些有关电动汽车充电站建设的管理见解。

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