Substellar companions and isolated planetary mass objects from protostellar disc fragmentation
Abstract
Self-gravitating protostellar discs are unstable to fragmentation if the gas can cool on a time scale that is short compared to the orbital period. We use a combination of hydrodynamic simulations and N-body orbit integrations to study the long term evolution of a fragmenting disc with an initial mass ratio to the star of M_disc/M_star = 0.1. For a disc which is initially unstable across a range of radii, a combination of collapse and subsequent accretion yields substellar objects with a spectrum of masses extending (for a Solar mass star) up to ~0.01 M_sun. Subsequent gravitational evolution ejects most of the lower mass objects within a few million years, leaving a small number of very massive planets or brown dwarfs in eccentric orbits at moderately small radii. Based on these results, systems such as HD 168443 -- in which the companions are close to or beyond the deuterium burning limit -- appear to be the best candidates to have formed via gravitational instability. If massive substellar companions originate from disc fragmentation, while lower-mass planetary companions originate from core accretion, the metallicity distribution of stars which host massive substellar companions at radii of ~1 au should differ from that of stars with lower mass planetary companions.
Cite
@article{arxiv.astro-ph/0310679,
title = {Substellar companions and isolated planetary mass objects from protostellar disc fragmentation},
author = {W. K. M. Rice and P. J. Armitage and I. A. Bonnell and M. R. Bate and S. V. Jeffers and S. G. Vine},
journal= {arXiv preprint arXiv:astro-ph/0310679},
year = {2009}
}
Comments
5 pages, accepted for publication in MNRAS