English

Magnetic properties of Proxima Centauri b analogues

Earth and Planetary Astrophysics 2019-07-26 v2

Abstract

The discovery of a planet around the closest star to our Sun, Proxima Centauri, represents a quantum leap in the testability of exoplanetary models. Unlike any other discovered exoplanet, models of Proxima b could be contrasted against near future telescopic observations and far future in-situ measurements. In this paper we aim at predicting the planetary radius and the magnetic properties (dynamo lifetime and magnetic dipole moment) of Proxima b analogues (solid planets with masses of 13M\sim 1-3\,M_\oplus, rotation periods of several days and habitable conditions). For this purpose we build a grid of planetary models with a wide range of compositions and masses. For each point in the grid we run the planetary evolution model developed in \citet{Zuluaga2013}. Our model assumes small orbital eccentricity, negligible tidal heating and earth-like radiogenic mantle elements abundances. We devise a statistical methodology to estimate the posterior distribution of the desired planetary properties assuming simple prior distributions for the orbital inclination and bulk composition. Our model predicts that Proxima b would have a mass 1.3Mp2.3M1.3\leq M_{\rm p}\leq 2.3\,M_{\oplus} and a radius Rp=1.40.2+0.3RR_{\rm p}=1.4^{+0.3}_{-0.2}\,R_{\oplus}. In our simulations, most Proxima b analogues develop intrinsic dynamos that last for \geq4 Gyr (the estimated age of the host star). If alive, the dynamo of Proxima b have a dipole moment Mdip>0.32÷2.9×2.3Mdip,{\cal M}_{\rm dip}>0.32^{\times 2.3}_{\div 2.9}{\cal M}_{\rm dip,\oplus}. These results are not restricted to Proxima b but they also apply to earth-like planets having similar observed properties.

Keywords

Cite

@article{arxiv.1609.00707,
  title  = {Magnetic properties of Proxima Centauri b analogues},
  author = {Jorge I. Zuluaga and Sebastian Bustamante},
  journal= {arXiv preprint arXiv:1609.00707},
  year   = {2019}
}

Comments

Final stages of review in Planetary and Space Science. 21 pages, 11 figures