Abstract
We consider super-Earth sized planets which have a water mass fraction large enough to form an external mantle composed of high-pressure water-ice polymorphs and also lack a substantial H/He atmosphere. We consider such planets in their habitable zone, so that their outermost condensed mantle is a global, deep, liquid ocean. For these ocean planets, we investigate potential internal reservoirs of CO 2 , the amount of CO 2 dissolved in the ocean for the various saturation conditions encountered, and the ocean-atmosphere exchange flux of CO 2 . We find that, in a steady state, the abundance of CO 2 in the atmosphere has two possible states. When wind-driven circulation is the dominant CO 2 exchange mechanism, an atmosphere of tens of bars of CO 2 results, where the exact value depends on the subtropical ocean surface temperature and the deep ocean temperature. When sea-ice formation, acting on these planets as a CO 2 deposition mechanism, is the dominant exchange mechanism, an atmosphere of a few bars of CO 2 is established. The exact value depends on the subpolar surface temperature. Our results suggest the possibility of a negative feedback mechanism, unique to water planets, where a reduction in the subpolar temperature drives more CO 2 into the atmosphere to increase the greenhouse effect.
Cite
CITATION STYLE
Levi, A., Sasselov, D., & Podolak, M. (2017). The Abundance of Atmospheric CO 2 in Ocean Exoplanets: a Novel CO 2 Deposition Mechanism. The Astrophysical Journal, 838(1), 24. https://doi.org/10.3847/1538-4357/aa5cfe
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