System of elastic hard spheres which mimics the transport properties of a granular gas
arXiv:cond-mat/0405252 · doi:10.1103/PhysRevE.72.031308
Abstract
The prototype model of a fluidized granular system is a gas of inelastic hard spheres (IHS) with a constant coefficient of normal restitution . Using a kinetic theory description we investigate the two basic ingredients that a model of elastic hard spheres (EHS) must have in order to mimic the most relevant transport properties of the underlying IHS gas. First, the EHS gas is assumed to be subject to the action of an effective drag force with a friction constant equal to half the cooling rate of the IHS gas, the latter being evaluated in the local equilibrium approximation for simplicity. Second, the collision rate of the EHS gas is reduced by a factor , relative to that of the IHS gas. Comparison between the respective Navier-Stokes transport coefficients shows that the EHS model reproduces almost perfectly the self-diffusion coefficient and reasonably well the two transport coefficients defining the heat flux, the shear viscosity being reproduced within a deviation less than 14% (for ). Moreover, the EHS model is seen to agree with the fundamental collision integrals of inelastic mixtures and dense gases. The approximate equivalence between IHS and EHS is used to propose kinetic models for inelastic collisions as simple extensions of known kinetic models for elastic collisions
20 pages; 6 figures; change of title; few minor changes; accepted for publication in PRE
References in corpus (11)
- Inherent Rheology of a Granular Fluid in Uniform Shear Flow
- Diffusion of impurities in a granular gas
- Transport coefficients of d-dimensional inelastic Maxwell models
- Tracer diffusion in granular shear flows
- Steady state velocity distributions of an oscillated granular gas
- Hydrodynamic modes, Green-Kubo relations, and velocity correlations in dilute granular gases
- Transport coefficients for inelastic Maxwell mixtures
- Gaussian Kinetic Model for Granular Gases
- Uniform shear flow in dissipative gases. Computer simulations of inelastic hard spheres and (frictional) elastic hard spheres
- On the first Sonine correction for granular gases
- DSMC evaluation of the Navier-Stokes shear viscosity of a granular fluid
Cited by in corpus (13)
- Chapman-Enskog expansion about nonequilibrium states: the sheared granular fluid
- Transport coefficients for an inelastic gas around uniform shear flow: Linear stability analysis
- Uniform shear flow in dissipative gases. Computer simulations of inelastic hard spheres and (frictional) elastic hard spheres
- Shear-rate dependent transport coefficients for inelastic Maxwell models
- Granular mixtures modeled as elastic hard spheres subject to a drag force
- Class of dilute granular Couette flows with uniform heat flux
- Aging to non-Newtonian hydrodynamics in a granular gas
- Energy Production Rates of Multicomponent Granular Gases of Rough Particles. A Unified View of Hard-Disk and Hard-Sphere Systems
- Unsteady non-Newtonian hydrodynamics in granular gases
- Collision statistics in sheared inelastic hard spheres
- Rheological effects in the linear response and spontaneous fluctuations of a sheared granular gas
- Kinetic model for transport in granular mixtures
- Exact results for non-Newtonian transport properties in sheared granular suspensions: inelastic Maxwell models and BGK-type kinetic model