Heated granular fluids: the random restitution coefficient approach
arXiv:cond-mat/0101158 · doi:10.1007/s101890170072
Abstract
We introduce the model of inelastic hard spheres with random restitution coefficient , in order to account for the fact that, in a vertically shaken granular system interacting elastically with the vibrating boundary, the energy injected vertically is transferred to the horizontal degrees of freedom through collisions only, which leads to heating through collisions, i.e. to inelastic horizontal collisions with an effective restitution coefficient that can be larger than 1. This allows the system to reach a non-equilibrium steady state, where we focus in particular on the single particle velocity distribution in the horizontal plane, and on its deviation from a Maxwellian. Molecular Dynamics simulations and Direct Simulation Monte Carlo (DSMC) show that, depending on the distribution of , different shapes of can be obtained, with very different high energy tails. Moreover, the fourth cumulant of the velocity distribution quantifying the deviations from Gaussian statistics is obtained analytically from the Boltzmann equation and successfully tested against the simulations.
14 pages, 9 eps figures
Cited by in corpus (15)
- Randomly Driven Granular Fluids: collisional statistics and short scale structure
- Molecular dynamics simulations of vibrated granular gases
- Fluctuation-Dissipation relations in Driven Granular Gases
- Scaling, Multiscaling, and Nontrivial Exponents in Inelastic Collision Processes
- Hydrodynamic modes in a confined granular fluid
- Studies of Mass and Size Effects in Three-Dimensional Vibrofluidized Granular Mixtures
- Local Equation of State and Velocity Distributions of a Driven Granular Gas
- On the first Sonine correction for granular gases
- Shear viscosity of a model for confined granular media
- Effective two-dimensional model for granular matter with phase separation
- Energy nonequipartition in a collisional model of a confined quasi-two-dimensional granular mixture
- Granular fluid thermostatted by a bath of elastic hard spheres
- Boltzmann equation for dissipative gases in homogeneous states with nonlinear friction
- Attractor non-equilibrium stationary states in perturbed long-range interacting systems
- Anisotropic Energy Distribution in Three-Dimensional Vibrofluidized Granular Systems