English

Mass-radius relationships for irradiated ocean planets

Earth and Planetary Astrophysics 2021-06-18 v1

Abstract

Massive and water-rich planets should be ubiquitous in the universe. Many of those worlds are expected to be subject to important irradiation from their host star, and display supercritical water layers surrounded by extended steam atmospheres. Irradiated ocean planets with such inflated hydrospheres have been recently shown to be good candidates for matching the mass-radius distribution of sub-Neptunes. Here we describe a model that computes a realistic structure for water-rich planets by combining an interior model with an updated equation of state (EoS) for water, and an atmospheric model that takes into account radiative transfer. We find that the use of non appropriate EoSs can lead to the overestimation of the planetary radius by up to \sim10\%, depending on the planet size and composition. Our model has been applied to the GJ 9827 system as a test case and indicates Earth- or Venus-like interiors for planets b and c, respectively. Planet d could be an irradiated ocean planet with a water mass fraction of \sim20±10%20\pm10\%. We also provide fits for the mass-radius relationships, allowing one to directly retrieve a wide range of planetary compositions, without the requirement to run the model. Our calculations finally suggest that highly irradiated planets lost their H/He content through atmospheric loss processes, and that the leftover material led to either super-Earths or sub-Neptunes, depending on the water mass fraction.

Keywords

Cite

@article{arxiv.2105.01102,
  title  = {Mass-radius relationships for irradiated ocean planets},
  author = {Artyom Aguichine and Olivier Mousis and Magali Deleuil and Emmanuel Marcq},
  journal= {arXiv preprint arXiv:2105.01102},
  year   = {2021}
}

Comments

Accepted for publication in ApJ

R2 v1 2026-06-24T01:44:44.386Z