Derivation and Empirical Validation of a Refined Traffic Flow Model
arXiv:cond-mat/9805136 · doi:10.1016/S0378-4371(96)00228-2
Abstract
The gas-kinetic foundation of fluid-dynamic traffic equations suggested in previous papers [Physica A 219, 375 and 391 (1995)] is further refined by applying the theory of dense gases and granular materials to the Boltzmann-like traffic model by Paveri-Fontana. It is shown that, despite the phenomenologically similar behavior of ordinary and granular fluids, the relations for these cannot directly be transferred to vehicular traffic. The dissipative and anisotropic interactions of vehicles as well as their velocity-dependent space requirements lead to a considerably different structure of the macroscopic traffic equations, also in comparison with the previously suggested traffic flow models. As a consequence, the instability mechanisms of emergent density waves are different. Crucial assumptions are validated by empirical traffic data and essential results are illustrated by figures.
For related work see http://www.theo2.physik.uni-stuttgart.de/helbing.html
References in corpus (2)
Cited by in corpus (14)
- Traffic and Related Self-Driven Many-Particle Systems
- Generalized Force Model of Traffic Dynamics
- Derivation, Properties, and Simulation of a Gas-Kinetic-Based, Non-Local Traffic Model
- Micro- and Macrosimulation of Freeway Traffic
- Gas-Kinetic-Based Traffic Model Explaining Observed Hysteretic Phase Transition
- Macroscopic Dynamics of Multi-Lane Traffic
- Fundamentals of Traffic Flow
- Modeling and Simulation of Multi-Lane Traffic Flow
- Modeling Multi-Lane Traffic Flow with Queuing Effects
- From Microscopic to Macroscopic Traffic Models
- Continuum modeling of freeway traffic flows: State-of-the-art, challenges and future directions in the era of connected and automated vehicles
- Generalized Deterministic Traffic Rules
- Structure and Instability of High-Density Equations for Traffic Flow
- Spatio-temporal organization of vehicles in a cellular automata model of traffic with 'slow-to-start' rule