Multi-modal transportation optimization of a local corridor

B. Mcmahon, Mallory Draeger, N. Ferguson, Haley Moberg, E. Barrella
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引用次数: 1

Abstract

The objective of this project is to redesign a one-mile section of the South Main Street Corridor in Harrisonburg, Virginia into a multimodal one that feasibly and safely integrates motor vehicles, bicyclists, and pedestrian traffic. Traditional traffic engineering practices emphasize optimizing vehicular traffic movement while treating pedestrian and bicyclist traffic movements as constraints. The focus of this research is to develop a way to maximize the capacity of existing right-of-way for all three traffic movements simultaneously, using a common metric of person-trips. Starting with standard equations from the Highway Capacity Manual for modal capacity of an intersection approach, the objective function for an optimization problem is developed. The objective function is the sum of capacity for each traffic movement measured in person-trips/hour, which normalizes the metrics. The input variables are flow rates for each movement that can vary based on scenario but cannot exceed their respective saturation flow rates. The outputs, or key design variables, are number of sublanes, which are unique to each traffic movement and define the geometry of the travel way. Combining all the sublane-widths results in the total width of the travel way that is constrained by the existing width of right-of-way. Therefore, through varying the flow rate per mode, different scenarios are evaluated that represent status quo, and shifts in corridor use. All other variables in the capacity equation are held constant. Based on the constraints, the objective function will yield a feasible region for which maximization of intersection efficiency will be found. The resultant combination of sublanes for each mode of transportation can then be implemented into the redesign model. This will alow for the most efficient flow of people through the intersection, regardless of mode choice, and could help promote policies and street design that prioritize alternatives to vehicular travel.
某地区走廊多式联运优化
该项目的目标是重新设计弗吉尼亚州哈里森堡南主街走廊的一英里路段,使其成为一个可行且安全地整合机动车、自行车和行人交通的多式联运通道。传统的交通工程实践强调优化车辆交通运动,而将行人和自行车交通运动视为约束。本研究的重点是开发一种方法,以最大限度地提高现有的路权的容量,同时所有三种交通运动,使用一个共同的度量人的行程。从《公路通行能力手册》中交叉口通行能力的标准方程出发,建立了交叉口通行能力优化问题的目标函数。目标函数是以人/小时为单位测量的每个交通运动的容量总和,它使指标标准化。输入变量是每个移动的流量,可以根据场景而变化,但不能超过各自的饱和流量。输出,或关键的设计变量,是子层次的数量,每个交通运动是唯一的,并定义了旅行方式的几何形状。将所有的子车道宽度组合在一起,就得到了受现有路权宽度约束的通行道路总宽度。因此,通过改变每个模式的流量,评估不同的场景,代表现状,以及走廊使用的变化。容量方程中的所有其他变量保持不变。在约束条件的基础上,目标函数将产生一个可行区域,在该可行区域内交叉口效率将达到最大值。每一种运输方式的子层的最终组合可以被实现到重新设计的模型中。这将允许最有效的人流通过十字路口,无论选择哪种模式,并有助于促进优先考虑车辆出行的政策和街道设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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