Simulation and experiment of gas diffusion in a granular bed

Author:

Güttler C1ORCID,Rose M2,Sierks H1,Macher W3ORCID,Zivithal S3,Blum J4,Laddha S3ORCID,Gundlach B5,Kargl G3ORCID

Affiliation:

1. Max Planck Institute for Solar System Research , Justus-von-Liebig-Weg 3, D-37077 Göttingen , Germany

2. Ingenieurbüro Dr.-Ing. Martin Rose , Sommerhofenstraße 148, D-71067 Sindelfingen , Germany

3. Space Research Institute, Austrian Academy of Sciences , Schmiedlstraße 6, A-8042 Graz , Austria

4. Institut für Geophysik und extraterrestrische Physik, Technische Universität Braunschweig , Mendelssohnstraße 3, D-38106 Braunschweig , Germany

5. Institut für Planetologie, Westfälische Wilhelms-Universität Münster , Wilhelm-Klemm-Str. 10, D-48149 Münster , Germany

Abstract

ABSTRACTThe diffusion of gas through porous material is important to understand the physical processes underlying cometary activity. We study the diffusion of a rarefied gas (Knudsen regime) through a packed bed of monodisperse spheres via experiments and numerical modelling, providing an absolute value of the diffusion coefficient and compare it to published analytical models. The experiments are designed to be directly comparable to numerical simulations, by using precision steel beads, simple geometries, and a trade-off of the sample size between small boundary effects and efficient computation. For direct comparison, the diffusion coefficient is determined in Direct Simulation Monte Carlo (DSMC) simulations, yielding a good match with experiments. This model is further-on used on a microscopic scale, which cannot be studied in experiments, to determine the mean path of gas molecules and its distribution, and compare it against an analytical model. Scaling with sample properties (particle size and porosity) and gas properties (molecular mass and temperature) is consistent with analytical models. As predicted by these, results are very sensitive on sample porosity and we find that a tortuosity q(ε) depending linearly on the porosity ε can well reconcile the analytical model with experiments and simulations. Mean paths of molecules are close to those described in the literature, but their distribution deviates from the expectation for small path lengths. The provided diffusion coefficients and scaling laws are directly applicable to thermophysical models of idealized cometary material.

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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