Simulating Radiative Heat Transfer in Multi‐Scattering Irregular Surfaces: Application to Snow and Ice Morphologies on Europa

Author:

Carreon Anthony12,Macias Antonio12,Hsu Andy12ORCID,Berisford Daniel F.23ORCID,Goldstein David B.1ORCID,Varghese Philip1ORCID,Trafton Laurence1,Hand Kevin P.2ORCID,Steckloff Jordan1ORCID,Mahieux Arnaud1

Affiliation:

1. The University of Texas at Austin Austin TX USA

2. Jet Propulsion Laboratory California Institute of Technology Pasadena CA USA

3. Airborne Snow Observatories, Inc. Mammoth Lakes CA USA

Abstract

AbstractWe developed a Monte‐Carlo‐based radiative heat transfer model capable of simulating solar exposure and subsequent warming of rough snow and ice surfaces on ice‐covered airless solar system bodies. The model accounts for wavelength‐dependent internal light scattering and heat conduction in the snow interior down to meter‐scale depths. We validated the model against analytical and experimental test cases with relevant applications to Europa, one of Jupiter's moons. We examined differential heating across the surface, from the centimeter to meter scale, to reveal potential patterns of preferential sublimation that could lead to rough ice morphologies, such as penitentes. An exploration of parameters such as penitente height‐width ratios, shape, size, snow grain size, and thermal properties revealed that taller, thinner, larger penitentes with sharper peaks, coarser snow grain sizes, and lower thermal inertias are more likely to grow in Europa's environment near the equator.

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Geochemistry and Petrology,Geophysics

Reference51 articles.

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4. Berisford D. Furst B. Foster J. Poston M. Schoelen D. Sahu D. et al. (2018).Laboratory simulation of sublimating planetary surface ices: Experiment design and thermal considerations.

5. Theory of structure formation in snowfields motivated by penitentes, suncups, and dirt cones

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