English

Modelling the atmosphere of lava planet K2-141b: implications for low and high resolution spectroscopy

Earth and Planetary Astrophysics 2020-10-28 v1 Space Physics

Abstract

Transit searches have uncovered Earth-size planets orbiting so close to their host star that their surface should be molten, so-called lava planets. We present idealized simulations of the atmosphere of lava planet K2-141b and calculate the return flow of material via circulation in the magma ocean. We then compare how pure Na, SiO, or SiO2_2 atmospheres would impact future observations. The more volatile Na atmosphere is thickest followed by SiO and SiO2_2, as expected. Despite its low vapour pressure, we find that a SiO2_2 atmosphere is easier to observe via transit spectroscopy due to its greater scale height near the day-night terminator and the planetary radial velocity and acceleration are very high, facilitating high dispersion spectroscopy. The special geometry that arises from very small orbits allows for a wide range of limb observations for K2-141b. After determining the magma ocean depth, we infer that the ocean circulation required for SiO steady-state flow is only 10410^{-4} m/s while the equivalent return flow for Na is several orders of magnitude greater. This suggests that a steady-state Na atmosphere cannot be sustained and that the surface will evolve over time.

Keywords

Cite

@article{arxiv.2010.14101,
  title  = {Modelling the atmosphere of lava planet K2-141b: implications for low and high resolution spectroscopy},
  author = {T. Giang Nguyen and Nicolas B. Cowan and Agnibha Banerjee and John E. Moores},
  journal= {arXiv preprint arXiv:2010.14101},
  year   = {2020}
}

Comments

8 pages, 7 figures