Diffusion transport coefficients for granular binary mixtures at low density. Thermal diffusion segregation
Vicente Garz\'o, J. Aaron Murray, Francisco Vega Reyes

TL;DR
This paper derives and validates diffusion transport coefficients for low-density granular binary mixtures, analyzing their dependence on inelasticity and mixture parameters, and explores thermal diffusion segregation effects.
Contribution
It provides explicit expressions for diffusion coefficients considering inelastic collisions and validates second Sonine approximation accuracy with DSMC simulations.
Findings
Second Sonine approximation improves diffusion coefficient predictions.
Diffusion coefficients depend on restitution coefficients and mixture parameters.
Thermal diffusion factor $\\Lambda$ characterizes segregation behavior.
Abstract
The mass flux of a low-density granular binary mixture obtained previously by solving the Boltzmann equation by means of the Chapman-Enskog method is considered further. As in the elastic case, the associated transport coefficients , and are given in terms of the solutions of a set of coupled linear integral equations which are approximately solved by considering the first and second Sonine approximations. The diffusion coefficients are explicitly obtained as functions of the coefficients of restitution and the parameters of the mixture (masses, diameters and concentration) and their expressions hold for an arbitrary number of dimensions. In order to check the accuracy of the second Sonine correction for highly inelastic collisions, the Boltzmann equation is also numerically solved by means of the direct simulation Monte Carlo (DSMC) method to determine the mutual…
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