Kinetic theory of granular particles immersed in a molecular gas
arXiv:2110.15212 · doi:10.1017/jfm.2022.410
Abstract
The transport coefficients of a dilute gas of inelastic hard spheres immersed in a molecular gas are determined. We assume that the number density of the granular gas is much smaller than that of the surrounding molecular gas, so that the latter is not affected by the presence of solid particles. In this situation, the molecular gas may be treated as a thermostat (or bath) of elastic hard spheres at a fixed temperature. This system (granular gas thermostated by a bath of elastic hard spheres) can be considered as a reliable model for describing the dynamic properties of particle-laden suspensions. The Boltzmann kinetic equation is the starting point of the present work. First step is to characterise the reference state in the perturbation scheme, namely the homogeneous state. Theoretical results for the granular temperature and kurtosis obtained in the homogeneous steady state are compared against Monte Carlo simulations showing a good agreement. Then, the Chapman-Enskog method is employed to solve the Boltzmann equation to first order in spatial gradients. As expected, the Navier-Stokes-Fourier transport coefficients of the granular gas are given in terms of the solutions of a coupled set of linear integral equations which are approximately solved by considering the leading terms in a Sonine polynomial expansion. Our results show that the dependence of the transport coefficients on the coefficient of restitution is quite different from that found when the influence of the interstitial molecular gas is neglected (dry granular gas). When the granular particles are much more heavier than the gas particles (Brownian limit) the expressions of the transport coefficients are consistent with those previously derived from the Fokker-Planck equation. Finally, a linear stability analysis of the homogeneous steady state is performed showing this state is always linearly stable.
38 pages, 11 figures
References in corpus (14)
- Stationary state volume fluctuations in a granular medium
- Approach to jamming in an air-fluidized granular bed
- Granular Brownian motion
- Thinning or thickening? Multiple rheological regimes in dense suspensions of soft particles
- Mass and heat fluxes for a binary granular mixture at low-density
- The second and third Sonine coefficients of a freely cooling granular gas revisited
- Revisiting ignited-quenched transition and the non-Newtonian rheology of a sheared dilute gas-solid suspension
- Enskog kinetic theory for multicomponent granular suspensions
- Enskog kinetic theory of rheology for a moderately dense inertial suspension
- Modified Sonine approximation for granular binary mixtures
- Time-dependent homogeneous states of binary granular suspensions
- Granular fluid thermostatted by a bath of elastic hard spheres
- Non-Newtonian rheology in inertial suspensions of inelastic rough hard spheres under simple shear flow
- Experimental study of clusters in dense granular gas and implications for the particle stopping time in protoplanetary disks
Cited by in corpus (8)
- Diffusion of intruders in granular suspensions: Enskog theory and random walk interpretation
- Tracer diffusion coefficients in a moderately dense granular suspension. Stability analysis and thermal diffusion segregation
- Kinetic Theory and Memory Effects of Homogeneous Inelastic Granular Gases under Nonlinear Drag
- Rheology of granular particles immersed in a molecular gas under uniform shear flow
- Enskog kinetic theory of binary granular suspensions: heat flux and stability analysis of the homogeneous steady state
- Mobility and diffusion of intruders in granular suspensions. Einstein relation
- Diffusion of intruders in a granular gas thermostatted by a bath of elastic hard spheres
- Exact results for non-Newtonian transport properties in sheared granular suspensions: inelastic Maxwell models and BGK-type kinetic model