4.5 Article

A statistical mechanics approach to macroscopic limits of car-following traffic dynamics

期刊

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijnonlinmec.2021.103806

关键词

Non-local particle models; Follow-the-Leader; Optimal Velocity; Relative frequency; Inhomogeneous Aw-Rascle-Zhang model; Lighthill-Whitham-Richards model; Stability of the uniform flow

资金

  1. U.S. Department of Energy's Office of Energy Efficiency and Renewable Energy (EERE) under the Vehicle Technologies Office [CID DE-EE0008872]
  2. National Science Foundation, USA under Cyber-Physical Systems Synergy [CNS1837481]
  3. Italian Ministry for Education, University and Research (MIUR) through the Dipartimenti di Eccellenza'' Programme (2018-2022)
  4. Italian Ministry for Education, University and Research (MIUR) through the Department of Mathematical Sciences G. L. Lagrange'', Politecnico di Torino [CUP: E11G18000350001]
  5. Italian Ministry for Education, University and Research (MIUR) through the PRIN 2017 project Innovative numerical methods for evolutionary partial differential equations and applications'' [2017KKJP4X]

向作者/读者索取更多资源

This study investigates the derivation of macroscopic traffic models from car-following vehicle dynamics using hydrodynamic limits of an Enskog-type kinetic description. The resulting macroscopic models depend on the relative frequency between Follow-the-Leader interactions and optimal velocity relaxation. Different types of macroscopic models are obtained depending on the dominance of either FTL interactions or OV relaxation rates.
We study the derivation of macroscopic traffic models from car-following vehicle dynamics by means of hydrodynamic limits of an Enskog-type kinetic description. We consider the superposition of Follow-the-Leader (FTL) interactions and relaxation towards a traffic-dependent Optimal Velocity (OV) and we show that the resulting macroscopic models depend on the relative frequency between these two microscopic processes. If FTL interactions dominate then one gets an inhomogeneous Aw-Rascle-Zhang model, whose (pseudo) pressure and stability of the uniform flow are precisely defined by some features of the microscopic FTL and OV dynamics. Conversely, if the rate of OV relaxation is comparable to that of FTL interactions then one gets a Lighthill-Whitham-Richards model ruled only by the OV function. We further confirm these findings by means of numerical simulations of the particle system and the macroscopic models. Unlike other formally analogous results, our approach builds the macroscopic models as physical limits of particle dynamics rather than assessing the convergence of microscopic to macroscopic solutions under suitable numerical discretisations.

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