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Magma Ocean Evolution of the TRAPPIST-1 PlanetsRecent observations of the potentially habitable planets TRAPPIST-1 e, f, and g suggest that they possess large water mass fractions of possibly several tens of wt% of water, even though the host star’s activity should drive rapid atmospheric escape. These processes can photolyze water, generating free oxygen and possibly desiccating the planet. After the planets formed, their mantles were likely completely molten with volatiles dissolving and exsolving from the melt. In order to understand these planets and prepare for future observations, the magma ocean phase of these worlds must be understood. To simulate these planets, we have combined existing models of stellar evolution, atmospheric escape, tidal heating, radiogenic heating, magma ocean cooling, planetary radiation, and water-oxygen-iron geochemistry. We present Magm Oc, a versatile magma ocean evolution model, validated against the rocky Super-Earth GJ 1132b and early Earth. We simulate the coupled magma ocean-atmospheric evolution of TRAPPIST-1 e, f, and g for a range of tidal and radiogenic heating rates, as well as initial water contents between 1 and 100 Earth oceans. We also reanalyze the structures of these planets and find they have water mass fractions of 0–0.23, 0.01–0.21, and 0.11–0.24 for planets e, f, and g, respectively. Our model does not make a strong prediction about the water and oxygen content of the atmosphere of TRAPPIST-1 e at the time of mantle solidification. In contrast, the model predicts that TRAPPIST-1 f and g would have a thick steam atmosphere with a small amount of oxygen at that stage. For all planets that we investigated, we find that only 3 ́5% of the initial water will be locked in the mantle after the magma ocean solidified.
Document ID
20220004125
Acquisition Source
2230 Support
Document Type
Accepted Manuscript (Version with final changes)
Authors
P Barth
(University of St Andrews St Andrews, Fife, United Kingdom)
L Carone
(Max Planck Institute for Astronomy Heidelberg, Germany)
R Barnes
(University of Washington Seattle, Washington, United States)
L Noack
(Freie Universität Berlin Berlin, Germany)
P Mollière ORCID
(Max Planck Institute for Astronomy Heidelberg, Germany)
Th Henning
(Max Planck Institute for Astronomy Heidelberg, Germany)
Date Acquired
March 9, 2022
Publication Date
October 28, 2021
Publication Information
Publication: Astronomy & Astrophysics
Publisher: EDP Sciences
Volume: 21
Issue: 11
Issue Publication Date: October 28, 2021
ISSN: 0004-6361
e-ISSN: 1432-0746
Subject Category
Lunar And Planetary Science And Exploration
Funding Number(s)
CONTRACT_GRANT: 80NSSC20K0229
CONTRACT_GRANT: 80NSSC18K0829
CONTRACT_GRANT: CA 1795/3
CONTRACT_GRANT: 83 24 28
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Keywords
Exoplanets
Terrestrial planets
Planetary atmospheres
Magma oceans
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