English

Beta Viscose Prescription in Self-Gravitating Disks

Earth and Planetary Astrophysics 2009-08-05 v1

Abstract

Duschl et al. (2000) have shown that the standard model for geometrically thin accretion disks (α\alpha-disks) leads to inconsistency if self-gravity play a role. This problem arise from parametrization of viscosity in terms of local sound velocity and vertical disks scale hight. The β\beta-viscosity prescription was introduced by Duschl et al. (2000), which has been derived from rotating shear flow experiment (ν=βΩR2\nu=\beta \Omega R^2). Following the Duschl et al. (2000) suggestion for a β\beta-prescription for viscosity, we apply this model for a thin self-gravitating disk around newborn stars. Our result is quite different with standard alpha disks in the outer part of the disks where the self-gravity becomes important. In the inner part of the disks, our solution converged to the standard α\alpha disks. It has been presented that for beta model, Toomre parameter is more than unity everywhere which means that gravitational fragmentation can be occur everywhere. We suggest that the kind of hydrodynamically driven viscosity, β\beta-model, can be used for modeling of accretion disks from proto-stellar disks to AGN and galactic disks. It would be interest to investigate ADAF-type solution for follow any effects by β\beta-viscosity model. An important property of the β\beta-disk is that they are viscously stable.

Keywords

Cite

@article{arxiv.0908.0332,
  title  = {Beta Viscose Prescription in Self-Gravitating Disks},
  author = {S. Abbassi and J. Ghanbari},
  journal= {arXiv preprint arXiv:0908.0332},
  year   = {2009}
}

Comments

appeared in proceeding of 10th Asian-pacific regional IAU meeting