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Dynamic Stability Analysis and Optimization of Multi-Vehicle Systems in Heterogeneous Connected Traffic
1School of Mechanical and Automotive Engineering, Qingdao University of Technology, Qingdao 266520, China.
Sensors (Basel, Switzerland)
|February 13, 2025
Summary
This study introduces an advanced connected autonomous vehicle (CAV) model to improve mixed traffic flow stability. The model effectively reduces congestion and oscillations, enhancing traffic efficiency and safety.
Area of Science:
- Transportation Engineering
- Traffic Flow Theory
- Intelligent Transportation Systems
Background:
- Mixed traffic flows comprise human-driven vehicles (HDVs), connected autonomous vehicles (CAVs), autonomous vehicles (AVs), and connected human-driven vehicles (CHVs).
- Interactions in heterogeneous traffic are complex, necessitating advanced modeling for stability analysis.
Purpose of the Study:
- To develop and validate a refined CAV car-following model for mixed-traffic environments.
- To identify key parameters that enhance traffic flow stability in heterogeneous traffic conditions.
Main Methods:
- A refined CAV car-following model incorporating multi-vehicle state information (headway, velocity differences, acceleration, memory effects) was developed.
- Theoretical analysis of the model's linear and nonlinear stability was performed.
- Numerical simulations were conducted for braking, start-up, and ring road scenarios.
Main Results:
- The proposed model effectively suppresses traffic congestion and reduces oscillations.
- Key parameters influencing flow stability in mixed environments were identified.
- Simulations validated the model's efficacy in improving traffic flow stability.
Conclusions:
- The refined CAV model offers valuable insights into connected vehicle behavior in mixed traffic.
- CAV-based strategies show significant potential for enhancing safety and efficiency in future transportation systems.
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