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Trading off costs, environmental impact, and levels of service in the optimal design of transit bus fleets

机译:在公交车队的最佳设计中权衡成本,环境影响和服务水平

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The development of a systematic framework to support the design of transit bus fleets is justified by the significant and long-lasting implications associated with decisions to purchase transit vehicles, as well as by developments in fuel propulsion and battery technologies over the last 2 decades that have increased the options available to transit operators, and, in turn, the complexity of assessing the corresponding tradeoffs. The need to evaluate these tradeoffs is, in part, driven by the emergence of environmental impact mitigation, i.e., emissions reductions, as a critical concern of transit operators and governments around the world. To address these concerns, we present an optimization model to support the design of transit bus fleets while accounting for costs, level-of-service requirements, and environmental impact. Methodologically, the work bridges applications of Economic Input-Output analysis to conduct environmental lifecycle assessment, with seminal work in production economics. We apply the framework to support design of bus fleets consisting of 4 bus types differing in their fuel-propulsion technology: ultra-low sulfur diesel, hybrid diesel-electric, compressed natural gas, and hydrogen fuel-cell. The 4 bus types were assessed in the National Renewable Energy Laboratory transit bus evaluation and demonstration studies conducted over the period 2003-2009. The nominal problem herein is to minimize acquisition, operation and disposal costs. Constraints in the model are used to impose a minimum frequency of service, i.e., headway, and to ensure that route capacity satisfies passenger demand. Environmental impact is considered along the following dimensions: energy consumption, and emissions of greenhouse gasses, paniculate matter, and nitrous oxides. Results show that fleet heterogeneity increases in scenarios where demand fluctuates, i.e., peak vs. off-peak. Perhaps even more interesting, we show how the dual/shadow prices provide a (monetary) measure of the tradeoffs among level of service and environmental impact, and discuss how they can be used to obtain robust fleet configurations.
机译:支持购买公交车辆的决定的系统性框架的开发是合理的,这与购买公交车辆的决定相关的重大而持久的影响,以及过去二十年来燃料推进和电池技术的发展已经证明了这一点。增加了过境运营商可以使用的选项,进而增加了评估相应权衡的复杂性。评估这些折衷的部分原因是由于减轻环境影响(即减少排放)的出现,这已成为世界各地公交运营商和政府的关注重点。为了解决这些问题,我们提出了一种优化模型,以支持公交车队的设计,同时考虑成本,服务水平要求和环境影响。从方法上讲,该工作将经济投入产出分析的应用程序与进行环境生命周期评估的桥梁联系在一起,并与生产经济学中的开创性工作联系在一起。我们应用该框架来支持公交车队的设计,该公交车队由4种类型的燃料推进技术不同的公交车组成:超低硫柴油,混合动力柴电,压缩天然气和氢燃料电池。在2003-2009年期间进行的国家可再生能源实验室过境巴士评估和示范研究中,对这4种巴士进行了评估。本文的名义问题是最小化购置,操作和处置成本。该模型中的约束用于规定最低服务频率,即车距,并确保路线容量满足乘客需求。从以下方面考虑对环境的影响:能耗,温室气体,颗粒物和一氧化二氮的排放。结果表明,在需求波动的情况下(即高峰与非高峰),车队的异质性会增加。也许更有趣的是,我们展示了双重价格/影子价格如何提供服务水平和环境影响之间的权衡(货币)度量,并讨论如何将其用于获得强大的机队配置。

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