English

Self-Similar Collapse of a Self-Gravitating Viscous Disk

Astrophysics 2009-10-30 v1

Abstract

A self-similar solution for time evolution of isothermal, self-gravitating viscous disks is found under the condition that αα(H/r)\alpha' \equiv \alpha (H/r) is constant in space (where α\alpha is the viscosity parameter and H/rH/r is the ratio of a half-thickness to radius of the disk). This solution describes a homologous collapse of a disk via self-gravity and viscosity. The disk structure and evolution is distinct in the inner and outer parts. There is a constant mass inflow in the outer portions so that the disk has flat rotation velocity, constant accretion velocity, and surface density decreasing outward as Σr1\Sigma \propto r^{-1}. In the inner portions, in contrast, mass is accumulated near the center owing to the boundary condition of no radial velocity at the origin, thereby a strong central concentration being produced; surface density varies as Σr5/3\Sigma \propto r^{-5/3}. Moreover, the transition radius separating the inner and outer portions increases linearly with time. The consequence of such a high condensation is briefly discussed in the context of formation of a quasar black hole.

Keywords

Cite

@article{arxiv.astro-ph/9701189,
  title  = {Self-Similar Collapse of a Self-Gravitating Viscous Disk},
  author = {Shin Mineshige and Masayuki Umemura},
  journal= {arXiv preprint arXiv:astro-ph/9701189},
  year   = {2009}
}

Comments

6 pages without figures. The paper has 3 figures (if you need figures, please send email to [email protected]). To appear in ApJ, 1997 May 1 issue