优化个人快速交通系统的车队规模:以鹿特丹港为例

Jie Li, Y. Chen, Hao Li, I. Andreasson, H. J. Zuylen
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引用次数: 31

摘要

自个人快速交通(PRT)概念发展以来,成本问题一直是其发展中的一个重要问题。运行PRT系统的轻型、计算机引导的电动汽车通常是系统资本成本的主要组成部分,特别是在需求高的大型网络中。需要将足够数量的空车转移到有乘客等待或预计有需求的车站。一般来说,较大的车队规模会减少乘客的等待时间,从而在特定需求下提供更高水平的服务,但会增加投资成本,包括每辆车的资本成本和额外的运营和维护成本。因此,它需要在用户成本(乘客等待时间)和运营商成本(基于机队规模的资本成本和运营/维护成本)之间达成妥协。应该有一个最优的机队规模,以便在达到预期服务水平的同时,将这两种成本的总和降到最低。本文首先给出了获取公交需求的方法,然后利用交通仿真的成本效益分析给出了确定最优车队规模的处方。这个处方确定了执行优化任务所必需的一组活动。每项活动都被视为我们总体框架的一个组成部分,并通过荷兰鹿特丹港Waal/ Eemshaven港区的案例研究来说明这一框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing the fleet size of a Personal Rapid Transit system: A case study in port of Rotterdam
Cost issues have been an important concern in the development of Personal Rapid Transit (PRT) since the concept was developed several decades ago. The lightweight, computerguided electric vehicles operating the PRT system are generally a major part of the capital cost of the system, especially in larger network with high demand. A sufficient number of empty vehicles are needed to be moved to the stations where passengers are waiting or demand is expected. Generally a larger fleet size leads to a reduction in waiting time of passengers and thus a higher level of service given a specific demand, but an increased investment cost including capital cost per vehicle and additional operation and maintenance. So it requires a compromise between user cost (in terms of passenger waiting times) and operator cost (in terms of fleet sizedependent capital cost and operating/maintenance costs). There should be an optimal fleet size so that the sum of these two costs can be minimized while an expected level of service is achieved. This paper presents first the way to obtain the PRT demand, and then a prescription to determine the optimal fleet size using a cost-effectiveness analysis with traffic simulation. This prescription identifies the set of activities that are necessary to perform the optimization task. Each activity is regarded as a component in our general framework and this framework is illustrated by a case study in the Waal/ Eemshaven harbor area in the Port of Rotterdam, The Netherlands.
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