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Rainy-weather speed limit strategies on highways with variable longitudinal slopes
Chunjie Li1, Guanglin Sun2, Xinjian Liu1
1Hebei Expressway Group Limited, Shijiazhuang, China.
This study introduces a dynamic safe speed model for rainy conditions, improving highway safety by considering friction, slope, and perception distance. The model effectively reduces traffic conflicts, especially on adverse gradients.
Area of Science:
- Traffic Safety Engineering
- Vehicle Dynamics
- Environmental Impact on Transportation
Background:
- Rainfall significantly impairs highway safety by reducing pavement friction and driver perception.
- Adverse effects of longitudinal grade on vehicle dynamics are amplified during rainfall.
- Current speed management strategies often lack dynamic adaptation to rainy conditions.
Purpose of the Study:
- To develop a dynamic safe speed-limit model for rainy weather.
- To account for pavement friction, longitudinal slope, and perception distance in speed management.
- To improve car-following behavior and speed adaptation models for adverse weather.
Main Methods:
- Development of a dynamic safe speed-limit model.
- Improvement of the Intelligent Driver Model (IDM) for rainy conditions.
- Simulation experiments on a highway section under varying rainfall and slope conditions.
Main Results:
- Model validation showed high consistency with observed speeds (RMSE 2.13-3.08 km/h).
- The proposed speed-limit strategy reduced conflict rates by up to 82.4%.
- Increased rainfall intensity and downhill slopes significantly narrowed safety margins.
Conclusions:
- Progressively stricter speed limits are needed for rainfall intensities above 1.0 mm/min.
- Downhill sections (-3% slope) are particularly critical during rainfall.
- The findings provide a quantitative basis for adaptive highway speed control in rain.
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