Velocity correlations and the structure of nonequilibrium hard core fluids
arXiv:cond-mat/0008359 · doi:10.1103/PhysRevLett.86.3344
Abstract
A model for the pair distribution function of nonequilibrium hard-core fluids is proposed based on a model for the effect of velocity correlations on the structure. Good agreement is found with molecular dynamics simulations of granular fluids and of sheared elastic hard spheres. It is argued that the incorporation of velocity correlations are crucial to correctly modeling atomic scale structure in nonequilibrium fluids.
Final corrections after referees' reports. To appear in PRL
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- Kinetic Theory and Hydrodynamics of Dense, Reacting Fluids far from Equilibrium
- Atomic-scale structure of hard-core fluids under shear flow
- Kinetic Theory and Hydrodynamics for Rapid Granular Flow - A Perspective
- Modelling inelastic granular media using Dynamical Density Functional Theory
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