Hydrodynamic stability and mode coupling in Keplerian flows: local strato-rotational analysis
A. G. Tevzadze, G. D. Chagelishvili, J.-P. Zahn

TL;DR
This paper analyzes how rotation and stratification in Keplerian flows lead to vortex modes and spiral-density waves, revealing their transient growth and mode coupling, which could influence turbulence in accretion disks.
Contribution
It introduces the concept of vortex mode perturbations in stratified Keplerian flows and demonstrates their linear coupling with spiral-density waves, highlighting their role in disk dynamics.
Findings
Vortex modes can undergo transient growth in Keplerian flows.
Linear mode coupling generates spiral-density waves from vortex modes.
Energy extraction from the background flow is facilitated by these coupled modes.
Abstract
Aims. Qualitative analysis of key (but yet unappreciated) linear phenomena in stratified hydrodynamic Keplerian flows: (i) the occurrence of a vortex mode, as a consequence of strato-rotational balance, with its transient dynamics; (ii) the generation of spiral-density waves (also called inertia-gravity or waves) by the vortex mode through linear mode coupling in shear flows. Methods. Non-modal analysis of linearized Boussinesq equations written in the shearing sheet approximation of accretion disk flows. Results. It is shown that the combined action of rotation and stratification introduces a new degree of freedom -- vortex mode perturbation -- which is linearly coupled with the spiral-density waves. These two modes are jointly able to extract energy from the background flow and they govern the disk dynamics in the small-scale range. The transient behavior of these modes is…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
