arXiv · astro-ph/0410224
An hydrodynamic shear instability in stratified disks
Abstract
We discuss the possibility that astrophysical accretion disks are dynamically unstable to non-axisymmetric disturbances with characteristic scales much smaller than the vertical scale height. The instability is studied using three methods: one based on the energy integral, which allows the determination of a sufficient condition of stability, one using a WKB approach, which allows the determination of the necessary and sufficient condition for instability and a last one by numerical solution. This linear instability occurs in any inviscid stably stratified differential rotating fluid for rigid, stress-free or periodic boundary conditions, provided the angular velocity $Ω$ decreases outwards with radius $r$. At not too small stratification, its growth rate is a fraction of $Ω$. The influence of viscous dissipation and thermal diffusivity on the instability is studied numerically, with emphasis on the case when $d \ln Ω/ d \ln r =-3/2$ (Keplerian case). Strong stratification and large diffusivity are found to have a stabilizing effect. The corresponding critical stratification and Reynolds number for the onset of the instability in a typical disk are derived. We propose that the spontaneous generation of these linear modes is the source of turbulence in disks, especially in weakly ionized disks.
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B. Dubrulle, L. Marié, Ch. Normand, D. Richard, F. Hersant, J. -P. Zahn. 2004-10-08. An hydrodynamic shear instability in stratified disks. https://doi.org/10.1051/0004-6361%3A200400065
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