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Truck platooning in the U.S. national road network: A system-level modeling approach

机译:在美国国家公路网中的卡车排中:一种系统级建模方法

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Truck platooning enables a group of trucks to move close together, which helps reduce truck fuel use and increase effective road capacity. In this paper, a system-level equilibrium model is developed to characterize spontaneous truck platooning with coexistence of non-platooning vehicles in a network, by explicitly accounting for the interlocking relationship among platoon formation time, truck fuel saving, and increase in effective road capacity. To equilibrate the relationships, an algorithm is proposed which involves a diagonalization approach and a bush based algorithm to solve decomposed subproblems. The condition of proportionality is imposed to obtain unique traffic flows for each class of vehicles on road links. In addition, a spatially constrained multivariate clustering technique is employed to construct origin/destination zones that are smaller than the coarse Freight Analysis Framework (FAF) zones, while maintaining reasonable computational burden for network traffic assignment. Model implementation in the U.S. shows that platooning could lead to 7.9% fuel saving among platoonable trucks in 2025 and a comparable increase in effective capacity of platoonable road links, which would account for 60% of rural interstate roads. The fuel saving and road capacity improvement translate into an annual cost reduction of $868 million for the U.S. intercity trucking sector and reduced road infrastructure investment needs worth $4.8 billion. Extensive sensitivity analysis further reveals that fuel saving of platoonable trucks increases with platoon size but decreases with inter-truck distance in a platoon. Fuel saving potential suggests that priority should be given to rural rather than urban roads in deploying platooning technologies. As expected, greater market penetration of platooning technologies means higher fuel saving and greater increase in effective road capacity.
机译:卡车排配备一组卡车将靠近靠近,这有助于减少卡车燃料使用并提高有效的道路容量。在本文中,开发了一种系统级均衡模型,以表征自发卡车,通过在网络中的互锁关系中明确核对互锁关系,卡车节省的互锁关系和有效的道路容量增加。为了平衡关系,提出了一种涉及对角化方法和基于衬套的算法来解决分解的子问题的算法。施加相称条件,以获得对道路链路上的每类车辆的独特交通流量。另外,采用空间约束的多变量聚类技术来构建小于粗货分析框架(FAF)区域的原点/目的地区域,同时保持网络流量分配的合理计算负担。在美国的模型实施中,分列可以在2025年的公用卡车之间产生7.9%的燃料节水,有效的公路联系的有效能力的增加,这将占农村州际公路的60%。节省燃油和道路产能改善转化为美国城市间交通工业8.68亿美元的年度成本降低,并减少了价值48亿美元的道路基础设施投资需求。广泛的敏感性分析进一步揭示了可燃卡车的燃料节省与排尺寸增加,但在排隙间距离下降。燃料潜力表明,应优先考虑到农村而不是部署排技术的城市道路。正如预期的那样,更大的排放技术的市场渗透意味着更高的燃料节省,有效的道路容量增加。

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