Brown Dwarf Formation Through Gravitational Collapse: Insights From 3D Numerical Simulations
Abstract
The formation mechanism of Brown Dwarfs (BDs), whether akin to stars or ejected planetary-mass objects, remains debated. We present the first 3D radiation-MHD simulations of magnetized, turbulent, gravitationally unstable low-mass cores () collapsing into proto-BDs. Using the {\ttfamily RAMSES} code with adaptive mesh refinement, we model the full dynamical range (), including radiative transfer (flux limited diffusion) and non-ideal MHD (ambipolar diffusion). Our simulations self-consistently follow the isothermal collapse, first hydrostatic core formation, H dissociation, and BD birth. The resulting BDs have initial radii and masses , growing via accretion as we follow the early evolution of the object. Crucially, we find that BDs may form similarly to low-mass stars but with a prolonged first-core phase, supporting a star-like formation scenario.
Cite
@article{arxiv.2509.12336,
title = {Brown Dwarf Formation Through Gravitational Collapse: Insights From 3D Numerical Simulations},
author = {Adnan Ali Ahmad and Benoît Commerçon and Gilles Chabrier and Antonin Borderies},
journal= {arXiv preprint arXiv:2509.12336},
year = {2025}
}
Comments
9 pages, 7 figures, 1 table. Accepted for publication in ApJL