位置:首页 >工程技术 >交通运输科学与技术 >EUROPEAN TRANSPORT RESEARCH REVIEW >Vehicle trajectory at curved sections of two-lane mountain roads: a field study under natural driving conditions

两车道山路曲线部分的车辆轨迹:自然驾驶条件下的现场研究.

Vehicle trajectory at curved sections of two-lane mountain roads: a field study under natural driving conditions

作者:Jin Xu;Xiao Luo;Yi-Ming Shao;

关键词:Vehicle trajectory,Track, natural driving,Driving behavior, road safety,Oncoming lane occupation,Lane departure

DOI:https://doi.org/10.1007/s12544-018-0284-x

发表时间:2018年

  • 文献详情
  • 相似文献

摘要

目的车辆的轨迹受到车辆、驾驶行为和道路环境之间相互作用的综合影响。根据轨迹与道路几何形状之间的关系,可以识别高风险驾驶行为和事故多发路段。以往的相关研究多集中于道路上少数点的轨迹偏差,无法捕捉整条弯道上轨迹的连续变化,很少考虑大偏转角弯道上的轨迹特征。本研究的目的是调查客车在双车道山路上行驶的轨迹,从而确定轨道模式及其相关风险。方法在四辆双车道山路上进行了现场驾驶实验获取了高速公路和自然驾驶条件下的车辆轨迹。将实测轨迹与巷道边缘线一起放入坐标系中,也可确定轨迹横向偏差率的连续变化。进一步分析了车辆轨迹的形态特征及其受公路几何形状的影响。结果与结论观察到以下内容:i)根据LDRT剖面的特征确定了典型的轨迹模式,左弯四种模式、右弯五种模式,可用于识别碰撞易发生位置并揭示碰撞机理。 ii) 惯性可能会导致车辆在切入后过于靠近弯道外侧,因此驾驶员必须修正轨迹,尽管过度修正可能会使车辆进入迎面而来的车道。 iii) 驾驶员在进入弯道时采用较高的速度可能会导致更大程度地侵入对面车道或路肩。 iv) 水平曲线半径越小,轨迹越频繁地进入迎面车道。这些发现可以更好地理解客车的轨道行为,判断驾驶员行为的安全影响,从而识别容易发生碰撞的定位以及迎头碰撞、冲出道路和护栏碰撞的潜在机制。


Abstract

PurposeThe trajectory of a vehicle is comprehensively affected by the interactions between the vehicle, the driving behavior, and the road environment. High-risk driving behaviors and accident-prone road sections can be identified based on the relationship between the trajectory and road geometry. Previous related studies mostly focused on the trajectory deviation at a few points on the road, which cannot capture the continuous variation of the trajectory in an entire curve, and seldom considered the trajectory characteristics along curves with large deflection angles. The aim of this study is to investigate the trajectories passenger cars take on two-lane mountain roads and thus to determine the track patterns and its relevant risks.MethodsField driving experiments were performed on four two-lane mountain highways, and vehicle trajectories under natural driving conditions were acquired. The continuous change in the lateral deviation rate of the trajectory was also determined by putting the measured trajectories into the coordinate frame together with the edge line of roadway. Further, the morphological features of the vehicle trajectory and how it is affected by the highway geometry were analyzed.Results and conclusionsThe following were observed: i) Typical track patterns were determined according to features of LDRT profiles, four patterns for left-hand bends and five patterns for right-hand bends, which can be used to identify crash prone position and reveal the mechanism of crash. ii) Inertia may cause the vehicle to move too close to the outer side of the curve after a cut, for which reason the driver has to correct the trajectory, although overcorrection may move the vehicle into the oncoming lane. iii) A higher speed at curve entry adopt by the driver could result in a larger encroachment into opposite lane or shoulder. iv) The smaller the radius of the horizontal curve, the more frequently the trajectory entered the oncoming lane. These findings could provide a better understanding of the track behavior of passenger cars, judge the safety implications of driver behavior, and thus identify crash prone positioning and the potential mechanisms of head-on crashes, run-off-road and guardrail collisions.