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Design of LRT Signal Priority to Improve Arterial Traffic Mobility

机译:LRT信号优先权设计以改善动脉交通流动性

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摘要

Transit signal priority (TSP) is a cost-effective strategy for improving the movement of public transit vehicles, such as Light Rail Transit (LRT), buses, and streetcars, through controlled intersections. The application of TSP strategies improves the reliability and quality of service for transit vehicles with less disruption to normal traffic. The City of Edmonton in Alberta, Canada has recently extended its LRT system, which mainly runs through at-grade intersections. Edmonton's LRT is currently operating under pre-emption, which causes significant delays to other traffic. The problem is especially pronounced during peak hours when the LRT headway is decreased to 5min in both directions. This has led to dissatisfaction among motorists using the roadway along the LRT corridor. This paper analyzes different TSP strategies for improving the performance of the LRT corridor. A standard microsimulation tool with a ring barrier controller emulator was used to implement the strategies at a major intersection during peak hours. Field data for both morning and evening peak hours were collected at four intersections along the LRT corridor for the calibration of the model. Three strategies were explored in this paper: (1)simple LRT pre-emption, (2)LRT prediction and pre-emption, and (3)LRT prediction and pre-emption together with transit bus priority. A number of performance measures were used to evaluate each strategy. Results revealed that Strategy 2, where LRT arrival time is predicted to provide LRT pre-emption, yields the highest improvement in corridor performance.
机译:公交信号优先(TSP)是一种经济有效的策略,用于通过可控交叉路口改善轻轨(LRT),公交车和有轨电车等公交车辆的移动。 TSP策略的应用提高了运输车辆的可靠性和服务质量,而对正常交通的干扰较小。加拿大艾伯塔省的埃德蒙顿市最近扩大了LRT系统,该系统主要通过平交路口运行。埃德蒙顿的轻轨系统目前处于抢占状态,这会严重延迟其他交通。当高峰时间在两个方向上将LRT距离减小到5分钟时,该问题尤其明显。这导致沿轻轨走廊使用道路的驾驶者不满意。本文分析了改善TRT走廊性能的各种TSP策略。使用带有环障控制器仿真器的标准微仿真工具在高峰时段在主要交叉路口实施策略。沿轻轨走廊的四个交叉口收集了早晨和傍晚高峰时段的现场数据,以进行模型校准。本文探讨了三种策略:(1)简单的LRT抢占,(2)LRT预测和抢占,(3)LRT预测和抢占以及公交优先级。许多绩效指标用于评估每种策略。结果表明,策略2(其中LRT到达时间预计会提供LRT抢占)在走廊性能方面产生了最大的改善。

著录项

  • 来源
    《Journal of Transportation Engineering》 |2016年第9期|04016034.1-04016034.10|共10页
  • 作者单位

    Univ Alberta, Dept Civil & Environm Engn, City Operat, Versa Commercial Ctr 200, 9304-41 Ave, Edmonton, AB T6E 6G8, Canada;

    Univ Alberta, Dept Civil & Environm Engn, 7347 Singer Way NW, Edmonton, AB T6R 3R9, Canada;

    Univ Alberta, Dept Civil & Environm Engn, Policy Implementat & Evaluat, City Planning,Sustainable Dev City Edmonton, 13th Floor,Century Pl 9803-102A Ave, Edmonton, AB T5J 3A3, Canada;

    Wuhan Univ Technol, Intelligent Transport Syst Res Ctr, Engn Res Ctr Transportat Safety, Minist Educ, 1040 Heping Ave, Wuhan 430063, Peoples R China|Univ Alberta, Dept Civil & Environm Engn, Donadeo Innovat Ctr Engn 6 271, 9211 116th St, Edmonton, AB T6G 1H9, Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Transit signal priority; VISSIM; Ring barrier controller; Arterial performance;

    机译:公交信号优先级;VISSIM;环障控制器;动脉性能;

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