P073-01
Crustal Hydration of Ocean-scale Water Volumes Controlled Martian Climate and Habitability
Abstract:
To resolve these discrepancies, we developed a comprehensive water budget and D/H model that integrates all major water sinks and sources, including crustal hydration and volcanic degassing, which had not been considered by previous studies. We modelled possible past escape fluxes independently using KINETICS that permitted a range of ~1025 - 5×1029 H/s, 0.1-1000x the present-day escape flux. The D/H of the water inventory increases rapidly through the Noachian in all possible simulations due to the combination of quickly diminished reservoir size through crustal hydration and fractionation by atmospheric escape.
Simulations from this model reproduce early Noachian water reservoir volumes of 100-1500 m global layers, simultaneously compatible with geologic estimates of water, protoatmospheric water volumes, estimates of loss rates, and observed D/H evolution. Water availability decreased 40-95% over the Noachian (~4.1-3.7 Ga), while Amazonian (<1.5-3.0 Ga) water availability was similar to today. The majority of simulations are compatible with a 100-150 m GEL Hesperian ocean, while only endmember simulations are compatible with a 550 m GEL Noachian ocean. Between 30-99% of Martian water was to lost not to space, but to crustal hydration, highlighting irreversible chemical weathering’s crucial role in increasing aridity and reducing long-term habitability of terrestrial planets.