Parametric Study of the Rossby Wave Instability in a Two-dimensional Barotropic Disk II: Non-Linear Calculations
arXiv:1807.08847 · doi:10.3847/1538-4357/aad54d
Abstract
Vortices in protoplanetary disks have attracted attention since the discovery of lopsided structures. One of the possible mechanisms for producing vortices is the Rossby Wave Instability (RWI). In our previous work, we have performed detailed linear stability analyses of the RWI with various initial conditions. In this paper, we perform numerical simulations of the vortex formation by the RWI in 2D barotropic disks using the Athena++ code. As initial conditions, we consider axisymmetric disks with a Gaussian surface density bump of various contrasts and half-widths. Perturbations grow as expected from the linear stability analyses in the linear and weakly non-linear regimes. After the saturation, multiple vortices are formed in accordance with the most unstable azimuthal mode and coalesce one after another. In the end, only one quasi-stationary vortex (the RWI vortex) remains, which migrates inward. During the RWI evolution, the axisymmetric component approaches the stable configuration. We find that the axisymmetric component reaches the marginally stable state for the most unstable azimuthal mode at the saturation and the marginally stable state for the m = 1 mode at the final vortex merger. We investigate the structure and evolution of the RWI vortices. We obtain some empirical relations between the properties of the RWI vortices and the initial conditions. Using tracer particle analyses, we find that the RWI vortex can be considered as a physical entity like a large fluid particle. Our results provide a solid theoretical ground for quantitative interpretation of the observed lopsided structures in protoplanetary disks.
32 pages, 19 figures, 4 Tables, accepted for publication in ApJ
References in corpus (12)
- Planet formation bursts at the borders of the dead zone in 2D numerical simulations of circumstellar disks
- Dust Trapping by Vortices in Transitional Disks: Evidence for Non-ideal MHD Effects in Protoplanetary Disks
- On the Stability of Elliptical Vortices in Accretion Discs
- Effects of dust feedback on vortices in protoplanetary disks
- Embryos grown in the dead zone: Assembling the first protoplanetary cores in low mass self-gravitating circumstellar disks of gas and solids
- Long Term Evolution of Planet-Induced Vortices in Protoplanetary Disks
- Slowly-growing gap-opening planets trigger weaker vortices
- Rossby Wave Instability in three dimensional discs
- Long-Lived Dust Asymmetries at Dead Zone Edges in Protoplanetary Disks
- Dust traps as planetary birthsites: basics and vortex formation
- Vortex survival in 3D self-gravitating accretion discs
- On the evolution of vortices in massive protoplanetary discs
Cited by in corpus (17)
- Anisotropic Infall and Substructure formation in Embedded Disks
- Migrating super-Earths in low-viscosity discs: unveiling the roles of feedback, vortices, and laminar accretion flows
- Discovery of an au-scale excess in millimeter emission from the protoplanetary disk around TW Hya
- Three-dimensional Global Simulations of Type-II Planet-disk Interaction with a Magnetized Disk Wind: I. Magnetic Flux Concentration and Gap Properties
- ALMA Observations of the Asymmetric Dust Disk around DM Tau
- Planet-induced Vortices with Dust Coagulation in Protoplanetary Disks
- The Observability Of Vortex-Driven Spiral Arms In Protoplanetary Disk: Basic Spiral Properties
- Structure of a protobinary system: an asymmetric circumbinary disk and spiral arms
- Cooling-Induced Vortex Decay in Keplerian Disks
- Meso-scale Instability Triggered by Dust Feedback in Dusty Rings: Origin and Observational Implications
- New growth mechanism of dust grains in protoplanetary disks with magnetically driven disk winds
- Dynamics Near the Inner Dead-Zone Edges in a Proprotoplanetary Disk
- Emergence of vortices at the edges of planet-driven gaps in protoplanetary discs
- Rossby Wave Instabilities of Protoplanetary Discs with Cooling
- Boundary Layers of Accretion Disks: Discovery of Vortex-Driven Modes and Other Waves
- Dust rings as a footprint of planet formation in a protoplanetary disk
- Models and Observational Predictions of Dust Traps in Protoplanetary Discs