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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (8): 1750-1761.DOI: 10.3973/j.issn.2096-4498.2026.08.014

• 规划与设计 • 上一篇    下一篇

山地城市主干路隧道路段不同限速方案的车辆限速响应行为

徐进1, 袁春玲1, 何毅2, 屈建强2, 王涛3   

  1. (1. 重庆交通大学交通运输学院, 重庆 400074; 2. 重庆城投基础设施建设有限公司, 重庆 400014; 3. 桂林电子科技大学建筑与交通工程学院, 广西 桂林 541004)
  • 出版日期:2026-08-20 发布日期:2026-08-20
  • 作者简介:徐进(1977—),男,吉林四平人,2010年毕业于西南交通大学,交通工程专业,博士,教授,现从事人-车-路协同、道路交通安全、驾驶行为等研究工作。E-mail: yhnl_996699@163.com。

Vehicle-Speed Responses to Alternative Speed-Limit Schemes in Urban Road Tunnels in Mountainous Cities

XU Jin1, YUAN Chunling1, HE Yi2, QU Jianqiang2, WANG Tao3   

  1. (1. College of Traffic and Transportation, Chongqing Jiaotong University, Chongqing 400074, China; 2. Chongqing Chengtou Infrastructure Construction Co., Ltd., Chongqing 400014, China; 3. School of Architecture and Transportation Engineering, Guilin University of Electronic Technology, Guilin 541004, Guangxi, China)
  • Online:2026-08-20 Published:2026-08-20

摘要: 为明确不同限速方案下驾驶人在山地城市隧道中的速度选择行为规律及限速响应特征,实现山地城市道路隧道的合理限速,选取重庆重钢隧道作为试验对象,使用无人机与雷达测速仪采集统一限速和差异限速方案下的车速数据。采用统计分析方法对限速调整前后的车速分布特性及超速行为进行研究,并以85%位车速为限速设定的基础参考,优化现有限速方案。结果显示: 1)重钢隧道交通流由小型车、中大型车和摩托车(未纳入本次统计)构成,其中小型车为主要车型,2次试验占比分别为94.41%和84.49%; 2)实施差异限速后,车辆在左线和右线的速度分别为40~110 km/h和30~100 km/h,较统一限速时提升约10 km/h; 3)限速调整后,车辆在立交一侧距隧道口25 m断面出现“先加速后减速”的行驶特征,左线车辆由限速调整前的加速驶入隧道变为减速驶入,右线车辆由减速驶出隧道变为加速驶出; 4)中大型车限速降低至50 km/h后,其85%位车速及速度差在左线下坡转弯等风险断面均呈下降趋势,但全路段整体运行速度有所提高; 5)小型车限速提升后,超速车辆比例降低约10%,且超速行为多集中在20%以下的轻度超速范围,但中大型车限速降低后,其超速行为频发。对中大型车现行限速值偏低的现状进行优化,实行分车型和分方向的差异限速,确定小型车、中大型车在左线和右线的限速分别为80、60 km/h和70、60 km/h。

关键词: 山地城市, 城市交通, 限速变化, 车速分布特性, 超速, 城市道路隧道

Abstract: To investigate driver speed-selection behavior and vehicle-speed responses of different speed-limit schemes in urban tunnels in mountainous cities, a case study is conducted on the Chonggang Tunnel in Chongqing, China. An unmanned aerial vehicle and radar speed gun collect speed data under unified and differential speed-limit schemes. Statistical analyses characterize vehicle-speed distributions and speeding behavior before and after the speed-limit adjustment. The 85th-percentile speed forms the primary reference for optimizing the existing speed-limit scheme. The results show that: (1) Traffic in the Chonggang Tunnel comprises small, medium, and large vehicles, and motorcycles (not included in this survey), among which small vehicles are the main models, the proportions in the two trials are 94.41% and 84.49%. (2) Under the differential speed-limit scheme, the observed speed ranges in the left and right tubes are 40-110 km/h and 30-100 km/h respectively, approximately 10 km/h higher than those observed under the unified speed-limit scheme. (3) At the cross-section located 25 m from the tunnel entrance near the interchange, vehicles exhibited an acceleration-deceleration pattern. After the speed-limit adjustment, vehicles in the left tube change from accelerating before entering the tunnel to decelerating; whereas vehicles in the right tube change from decelerating while exiting the tunnel to accelerating. (4) After the speed limit for medium and large vehicles reduces to 50 km/h, both the 85 th-percentile speed and speed difference decrease at risk locations, including the downhill curve in the left tube, although the overall operating speed across the tunnel increases. (5) Increasing the speed limit for small vehicles reduces the proportion of speeding vehicles by approximately 10%, with most speeding cases involving exceedances of less than 20%. In contrast, speeding increases in frequency among medium and large vehicles after their speed limit is reduced. Because the existing speed limit for medium and large vehicles is found to be excessively low, vehicle-type and direction-specific speed limits are proposed: 80 km/h for small vehicles and 60 km/h for medium and large vehicles in the left tube, and 70 km/h for small vehicles and 60 km/h for medium and large vehicles in the right tube.

Key words: mountainous city, urban traffic, speed-limit scheme, vehicle-speed distribution, speeding behavior, urban road tunnel