Full‐Field Modeling of Heat Transfer in Asteroid Regolith: 2. Effects of Porosity
- Others:
- School of Aerospace, Mechanical and Mechatronic Engineering (AMME) ; The University of Sydney
- The University of Sydney
- Centre de Mise en Forme des Matériaux (CEMEF) ; Mines Paris - PSL (École nationale supérieure des mines de Paris) ; Université Paris sciences et lettres (PSL)-Université Paris sciences et lettres (PSL)-Centre National de la Recherche Scientifique (CNRS)
- Observatoire de la Côte d'Azur (OCA) ; Institut national des sciences de l'Univers (INSU - CNRS)-Centre National de la Recherche Scientifique (CNRS)
- Rikkyo University [Tokyo]
- Deutsches Zentrum für Luft- und Raumfahrt [Köln] (DLR)
- Department of Astronomy and Planetary Science [Flagstaff] ; Northern Arizona University [Flagstaff]
- The Open University [Milton Keynes] (OU)
Description
The thermal conductivity of granular planetary regolith is strongly dependent on the porosity, or packing density, of the regolith particles. However, existing models for regolith thermal conductivity predict different dependencies on porosity. Here, we use a full-field model of planetary regolith to study the relationship between regolith radiative thermal conductivity, porosity, and the particle non-isothermality. The model approximates regolith as regular and random packings of spherical particles in a 3D finite element mesh framework. Our model results, which are in good agreement with previous numerical and experimental datasets, show that random packings have a consistently higher radiative thermal conductivity than ordered packings. From our random packing results, we present a new empirical model relating regolith thermal conductivity, porosity, temperature, particle size, and the thermal conductivity of individual particles. This model shows that regolith particle size predictions from thermal inertia are largely independent of assumptions of regolith porosity, except for when the non-isothermality effect is large, as is the case when the regolith is particularly coarse and/or is composed of low thermal conductivity material.
Abstract
International audience
Additional details
- URL
- https://hal-mines-paristech.archives-ouvertes.fr/hal-03901811
- URN
- urn:oai:HAL:hal-03901811v1
- Origin repository
- UNICA