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Location of Refueling Stations for Alternative Fuel Vehicles Considering Driver Deviation Behavior and Uneven Consumer Demand: Model, Heuristics, and GIS.

机译:考虑驾驶员偏离行为和消费者需求不均的替代燃料汽车加油站的位置:模型,启发式方法和GIS。

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摘要

Concerns about Peak Oil, political instability in the Middle East, health hazards, and greenhouse gas emissions of fossil fuels have stimulated interests in alternative fuels such as biofuels, natural gas, electricity, and hydrogen. Alternative fuels are expected to play an important role in a transition to a sustainable transportation system. One of the major barriers to the success of alternative-fuel vehicles (AFV) is the lack of infrastructure for producing, distributing, and delivering alternative fuels. Efficient methods that locate alternative-fuel refueling stations are essential in accelerating the advent of a new energy economy.;The objectives of this research are to develop a location model and a Spatial Decision Support System (SDSS) that aims to support the decision of developing initial alternative-fuel stations. The main focus of this research is the development of a location model for siting alt-fuel refueling stations considering not only the limited driving range of AFVs but also the necessary deviations that drivers are likely to make from their shortest paths in order to refuel their AFVs when the refueling station network is sparse. To add reality and applicability of the model, the research is extended to include the development of efficient heuristic algorithms, the development of a method to incorporate AFV demand estimates into OD flow volumes, and the development of a prototype SDSS. The model and methods are tested on real-world road network data from state of Florida.;The Deviation-Flow Refueling Location Model (DFRLM) locates facilities to maximize the total flows refueled on deviation paths. The flow volume is assumed to be decreasing as the deviation increases. Test results indicate that the specification of the maximum allowable deviation and specific deviation penalty functional form do have a measurable effect on the optimal locations of facilities and objective function values as well. The heuristics (greedy-adding and greedy-adding with substitution) developed here have been identified efficient in solving the DFRLM while AFV demand has a minor effect on the optimal facility locations. The prototype SDSS identifies strategic station locations by providing flexibility in combining various AFV demand scenarios.;This research contributes to the literature by enhancing flow-based location models for locating alternative-fuel stations in four dimensions: (1) drivers' deviations from their shortest paths, (2) efficient solution approaches for the deviation problem, (3) incorporation of geographically uneven alt-fuel vehicle demand estimates into path-based origin-destination flow data, and (4) integration into an SDSS to help decision makers by providing solutions and insights into developing alt-fuel stations.
机译:对石油峰值,中东政治动荡,健康危害以及化石燃料温室气体排放的担忧刺激了人们对生物燃料,天然气,电力和氢气等替代燃料的兴趣。替代燃料有望在向可持续运输系统的过渡中发挥重要作用。替代燃料汽车(AFV)成功的主要障碍之一是缺乏生产,分配和运输替代燃料的基础设施。定位替代燃料加油站的有效方法对于加速新能源经济的到来至关重要。本研究的目标是开发一个位置模型和一个空间决策支持系统(SDSS),以支持开发的决策最初的替代燃料站。这项研究的主要重点是开发用于选址加油站的位置模型,该模型不仅要考虑AFV的有限行驶范围,而且还要考虑驾驶员为了从其最短路径加油可能要做出的必要偏离当加油站网络稀疏时。为了增加模型的真实性和适用性,该研究扩展到包括有效启发式算法的开发,将AFV需求估计量合并到OD流量中的方法的开发以及SDSS原型的开发。该模型和方法在来自佛罗里达州的真实世界道路网络数据上进行了测试。偏差流加油位置模型(DFRLM)定位了设施,以最大化偏离路径上加油的总流量。流量随着偏差的增加而减少。测试结果表明,最大允许偏差和特定偏差惩罚函数形式的规范确实对设施的最佳位置和目标函数值也具有可测量的影响。已经确定,此处开发的启发式方法(添加贪婪和替换贪婪)在解决DFRLM方面非常有效,而AFV需求对最佳设施位置的影响较小。 SDSS原型可以通过灵活组合各种AFV需求场景来确定战略性加油站位置;该研究通过增强基于流量的位置模型来在四个维度上定位替代燃料加油站来为文献做出贡献:(1)驾驶员偏离最短位置路径;(2)偏差问题的有效解决方案;(3)将地理上不平衡的替代燃料汽车需求估算值合并到基于路径的起点-目的地流量数据中;以及(4)集成到SDSS中,通过提供决策者来帮助决策者开发替代燃料站的解决方案和见解。

著录项

  • 作者

    Kim, Jong-Geun.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Alternative Energy.;Geography.;Transportation.;Energy.;Operations Research.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:32

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