English

The Gravitational Instability of Adiabatic Filaments

Solar and Stellar Astrophysics 2020-04-01 v1 Astrophysics of Galaxies

Abstract

Filamentary structures, or long and narrow streams of material, arise in many areas of astronomy. Here we investigate the stability of such filaments by performing an eigenmode analysis of adiabatic and polytropic fluid cylinders, which are the cylindrical analog of spherical polytropes. We show that these cylinders are gravitationally unstable to perturbations along the axis of the cylinder below a critical wavenumber kcritfewk_{\rm crit} \simeq few, where kcritk_{\rm crit} is measured relative to the radius of the cylinder. Below this critical wavenumber perturbations grow as eσuτ\propto e^{\sigma_{\rm u}\tau}, where τ\tau is time relative to the sound crossing time across the diameter of the cylinder, and we derive the growth rate σu\sigma_{\rm u} as a function of wavenumber. We find that there is a maximum growth rate σmax1\sigma_{\rm max} \sim 1 that occurs at a specific wavenumber kmax1k_{\rm max} \sim 1, and we derive the growth rate σmax\sigma_{\rm max} and the wavenumbers kmaxk_{\rm max} and kcritk_{\rm crit} for a range of adiabatic indices. To the extent that filamentary structures can be approximated as adiabatic and fluid-like, our results imply that these filaments are unstable without the need to appeal to magnetic fields or external media. Further, the objects that condense out of the instability of such filaments are separated by a preferred length scale, form over a preferred timescale, and possess a preferred mass scale.

Keywords

Cite

@article{arxiv.2002.07318,
  title  = {The Gravitational Instability of Adiabatic Filaments},
  author = {Eric R. Coughlin and C. J. Nixon},
  journal= {arXiv preprint arXiv:2002.07318},
  year   = {2020}
}

Comments

ApJS Accepted