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Battery electric bus infrastructure planning under demand uncertainty

机译:需求不确定下的电池电动客车基础设施规划

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The electrification of city bus systems is an increasing trend, with many cities replacing their diesel buses with battery electric buses (BEBs). Due to limited battery capacities, and to random battery discharge rates-which are affected by weather, road and traffic conditions-BEBs often need daytime charging to support their operation for a whole day. The deployment of charging infrastructures, as well as the number of stand-by buses available, has a significant effect on the operational efficiency of electric bus systems. In this work, a stochastic integer program has been developed to jointly optimise charging station locations and bus fleet size under random bus charging demand, considering time-of-use electricity tariffs. The stochastic program is first approximated by its sample average and is solved by a customised Lagrangian relaxation approach. The applicability of the model and solution algorithm is demonstrated by applications to a series of hypothetical grid networks and to a real-world Melbourne City bus network. Managerial insights are also presented.
机译:城市公交系统的电气化正在发展,许多城市都用电池电动公交(BEB)代替了柴油公交。由于电池容量有限,并且电池的随机放电率受天气,道路和交通状况的影响,BEB经常需要白天充电以支持其一整天的运行。充电基础设施的部署以及可用的备用公交车的数量,对电动公交车系统的运营效率具有重大影响。在这项工作中,开发了一个随机整数程序,以结合使用时间的电价,在随机公交充电需求下共同优化充电站位置和公交车队规模。随机程序首先通过其样本平均值进行近似,然后通过定制的拉格朗日松弛方法进行求解。该模型和解决方案算法的适用性通过在一系列假设的网格网络和实际的墨尔本市公交网络中的应用得到证明。还介绍了管理见解。

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