English

On the Ocean Conditions of Hycean Worlds

Earth and Planetary Astrophysics 2024-02-20 v1

Abstract

Recent studies have suggested the possibility of Hycean worlds, characterised by deep liquid water oceans beneath H2_2-rich atmospheres. These planets significantly widen the range of planetary properties over which habitable conditions could exist. We conduct internal structure modelling of Hycean worlds to investigate the range of interior compositions, ocean depths and atmospheric mass fractions possible. Our investigation explicitly considers habitable oceans, where the surface conditions are limited to those that can support potential life. The ocean depths depend on the surface gravity and temperature, confirming previous studies, and span 10s to \sim1000 km for Hycean conditions, reaching ocean base pressures up to \sim6×\times104^4 bar before transitioning to high-pressure ice. We explore in detail test cases of five Hycean candidates, placing constraints on their possible ocean depths and interior compositions based on their bulk properties. We report limits on their atmospheric mass fractions admissible for Hycean conditions, as well as those allowed for other possible interior compositions. For the Hycean conditions considered, across these candidates we find the admissible mass fractions of the H/He envelopes to be \lesssim103^{-3}. At the other extreme, the maximum H/He mass fractions allowed for these planets can be up to \sim4-8%\%, representing purely rocky interiors with no H2_2O layer. These results highlight the diverse conditions possible among these planets and demonstrate their potential to host habitable conditions under vastly different circumstances to the Earth. Upcoming JWST observations of candidate Hycean worlds will allow for improved constraints on the nature of their atmospheres and interiors.

Keywords

Cite

@article{arxiv.2402.12330,
  title  = {On the Ocean Conditions of Hycean Worlds},
  author = {Frances E. Rigby and Nikku Madhusudhan},
  journal= {arXiv preprint arXiv:2402.12330},
  year   = {2024}
}

Comments

Accepted for publication in MNRAS