Energy Production Rates of Multicomponent Granular Gases of Rough Particles. A Unified View of Hard-Disk and Hard-Sphere Systems
arXiv:1809.02327 · doi:10.1063/1.5119584
Abstract
Granular gas mixtures modeled as systems of inelastic and rough particles, either hard disks on a plane or hard spheres, are considered. Both classes of systems are embedded in a three-dimensional space () but, while in the hard-sphere case the translational and angular velocities are vectors with the same dimensionality (and thus there are translational and rotational degrees of freedom), in the hard-disk case the translational velocity vectors are planar (i.e., translational degrees of freedom) and the angular velocity vectors are orthogonal to the motion plane (i.e., rotational degree of freedom). This complicates a unified presentation of both classes of systems, in contrast to what happens for smooth, spinless particles, where a treatment of -dimensional spheres is possible. In this paper, a kinetic-theory derivation of the (collisional) energy production rates and (where the indices and label different components) in terms of the numbers of degrees of freedom and is presented. Known hard-sphere and hard-disk expressions are recovered by particularizing to and , respectively. Moreover, in the case of spinless particles with , known energy production rates of smooth -dimensional spheres are also recovered.
11 pages, 1 figure; contributed paper at the 31st International Symposium on Rarefied Gas Dynamics (Glasgow, UK, July 23-27, 2018)