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Energy impact evaluation for eco-routing and charging of autonomous electric vehicle fleet: Ambient temperature consideration

机译:自主电动车车队生态路线和充电的能量影响评估:环境温度考虑

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摘要

This paper studies the heterogeneous energy cost and charging demand impact of autonomous electric vehicle (EV) fleet under different ambient temperature. A data-driven method is introduced to formulate a two-dimensional grid stochastic energy consumption model for electric vehicles. The energy consumption model aids in analyzing EV energy cost and describing uncertainties under variable average vehicle trip speed and ambient temperature conditions. An integrated eco-routing and optimal charging decision making framework is designed to improve the capability of autonomous EV's trip level energy management in a shared fleet. The decision making process helps to find minimum energy cost routes with consideration of charging strategies and travel time requirements. By taking advantage of derived models and technologies, comprehensive case studies are performed on a data-driven simulated transportation network in New York City. Detailed results show us the heterogeneous energy impact and charging demand under different ambient temperature. By giving the same travel demand and charging station information, under the low and high ambient temperature within each month, there exist more than 20% difference of overall energy cost and 60% difference of charging demand. All studies will help to construct sustainable infrastructure for autonomous EV fleet trip level energy management in real world applications.
机译:本文研究了不同环境温度下自主电动汽车(EV)车队的异构能源成本和充电需求影响。介绍了一种数据驱动的方法来建立电动汽车的二维网格随机能耗模型。能耗模型有助于分析电动汽车的能源成本,并描述可变平均车辆行驶速度和环境温度条件下的不确定性。设计了集成的生态路由和最佳充电决策制定框架,以提高共享车队中自主电动汽车行程水平能源管理的能力。决策过程有助于通过考虑充电策略和行驶时间要求来找到最小的能源成本路线。通过利用派生的模型和技术,在纽约市的数据驱动的模拟运输网络上进行了全面的案例研究。详细的结果向我们展示了不同环境温度下的异构能量影响和充电需求。通过给出相同的行驶需求和充电站信息,在每个月的低温和高温环境下,总体能源成本相差20%以上,而充电需求相差60%以上。所有研究都将有助于构建可持续的基础设施,以在实际应用中实现自主EV车队行程水平能源管理。

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