M.E. Elwood Madden, J.R. Leeman
Methane clathrate hydrate reservoirs capped by overlying permafrost have been proposed as potential sources of atmospheric methane plumes on Mars. However, the surface flux of methane from hydrate dissociation is limited by the diffusion rate of methane through the overlying ice. Assuming hydrates underlay the entire plume footprint, the maximum diffusion path length is expected to be less than 15 m, depths too shallow to stabilize pure methane hydrates under Mars geothermal and lithostatic conditions at low to mid latitudes. Therefore, pure methane hydrates confined within permafrost could not produce methane surface fluxes of the magnitude observed near the equator. However, the addition of 10% H2S, a secondary gas commonly associated with methane production on Earth, expands the hydrate stability field, with clathrates expected within 10 m of the surface at the equator and at depths less than 1 m at higher latitudes. This indicates that H2S would also be expected to be released as well as methane if the plumes have a confined hydrate reservoir source.
@article{5576fbf6-a1f9-43be-8c31-80d90f795563,
title={Reduced sulfur carbon water systems on M},
author={M.E. Elwood Madden and J.R. Leeman},
year={2026},
language={en}
}TY - JOUR TI - Reduced sulfur carbon water systems on M AU - M.E. Elwood Madden AU - J.R. Leeman PY - 2026 LA - en ER -
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