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相关概念视频

Dynamics Of Circular Motion: Applications01:17

Dynamics Of Circular Motion: Applications

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Suppose a car moves on flat ground and turns to the left. The centripetal force causing the car to turn in a circular path is due to friction between the tires and the road. For this, a minimum coefficient of friction is needed, or the car will move in a larger-radius curve and leave the roadway. Let's now consider banked curves, where the slope of the road helps in negotiating the curve. The greater the angle of the curve, the faster one can take the curve. It is common for race tracks for...
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Curvilinear Motion: Normal and Tangential Components01:27

Curvilinear Motion: Normal and Tangential Components

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When a car traverses a curved road, its motion can be elucidated by breaking it down into tangential and normal components. The car-centric coordinates attached to the vehicle move with it.
The positive direction of the t-axis aligns with the increasing position of the car along the curved path, denoted by the unit vector ut. Simultaneously, the n-axis, perpendicular to the t-axis, dissects the curved path into differential arc segments, each forming the arc of a circle with a radius of...
768
Sight Distance in a Vertical Curve01:29

Sight Distance in a Vertical Curve

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Sight distance on vertical curves is critical in roadway design. It ensures drivers can see far enough ahead to identify and respond to hazards effectively. This directly impacts safety, driver comfort, and the overall efficiency of the transportation network.Vertical curves are classified into crest and sag curves based on their geometry. For crest curves, sight distance is determined by the line of sight between a driver's eye and a small object on the road's surface. Design parameters for...
306
Introduction to Horizontal Curves01:19

Introduction to Horizontal Curves

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Horizontal curves are essential in highway and railroad design, ensuring smooth and safe transitions between straight path segments, or tangents. These curves allow vehicles to maintain speed without abrupt changes, minimizing accidents and improving travel efficiency.A horizontal curve is typically defined by its geometric relationship to two tangents that meet at an intersection point (P.I.), where a simple curve is introduced to connect them. The back tangent refers to the initial tangent...
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Introduction to Vertical Curves01:24

Introduction to Vertical Curves

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Vertical curves are parabolic transitions that connect different grades on highways and railroads, ensuring a smooth alignment between back and forward tangents. The back tangent represents the initial grade, while the forward tangent defines the subsequent grade. These curves can be symmetrical, with equal tangent lengths, or nonsymmetrical, with varying lengths. The key points defining a vertical curve include the Point of Vertical Intersection (P.V.I.), where the tangents meet; the Point of...
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Vertical Curve: Problem Solving01:23

Vertical Curve: Problem Solving

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Vertical curves provide the transition between two roadway grades, ensuring safety, comfort, and functionality. Calculating elevations at specific stations along the curve involves several systematic steps based on the curve's geometry and provided design parameters.The vertical curve is defined by its length, grades, Point of Vertical Intersection (P.V.I.) location, and P.V.I. elevation. The stations of the Point of Vertical Curvature (P.V.C.), where the curve begins, and the Point of Vertical...
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相关实验视频

Updated: Jan 9, 2026

Evaluation of an Exclusive Spur Dike U-Turn Design with Radar-Collected Data and Simulation
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一种方法来考虑道路曲率对积极转的影响.

Kai Liu1, Haixia Feng1, Zhixin Xu1

  • 1School of Transportation and Logistics Engineering, Shandong Jiaotong University, Jinan, Shandong, China.

PloS one
|December 5, 2025
PubMed
概括

本研究引入了一种新方法,通过使用车载诊断 (OBD) 数据和电子地图来消除道路曲线效应,准确地识别侵略性转. 这提高了危险驾驶行为识别和驾驶员安全.

科学领域:

  • 道路交通安全问题 道路安全问题
  • 驾驶行为分析 驾驶行为分析
  • 运输工程 运输工程 运输工程

背景情况:

  • 过度转是一种危险的驾驶行为.
  • 当前的方法往往忽视了道路几何学对积极转向识别的影响.
  • 准确识别攻击性驾驶对于道路安全至关重要.

研究的目的:

  • 提出一种新的方法来识别攻击性转向.
  • 为了消除道路曲率对积极转检测的影响.
  • 为了提高识别危险驾驶行为的准确性.

主要方法:

  • 使用车载诊断系统 (OBD) 的轨迹数据.
  • 集成高精度电子地图数据.
  • 开发一种消除道路曲线影响的方法.

主要成果:

  • 拟议的方法有效地消除了道路曲率对积极转识别的影响.
  • 对危险驾驶行为的误判减少.
  • 在识别攻击性转向危险行为的准确性得到了提高.

结论:

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  • 该方法可以更准确地评估攻击性转.
  • 这有助于提高驾驶员的安全性和交通行为分析.
  • 道路几何形状是识别攻击性驾驶的关键因素.