No self-shadowing instability in 2D radiation-hydrodynamical models of irradiated protoplanetary disks
arXiv:2207.05106 · doi:10.3847/1538-4357/ac7fee
Abstract
Theoretical models of protoplanetary disks including stellar irradiation often show a spontaneous amplification of scale height perturbations, produced by the enhanced absorption of starlight in enlarged regions. In turn, such regions cast shadows on adjacent zones that consequently cool down and shrink, eventually leading to an alternating pattern of overheated and shadowed regions. Previous investigations have proposed this to be a real self-sustained process, the so-called self-shadowing or thermal wave instability, which could naturally form frequently observed disk structures such as rings and gaps, and even potentially enhance the formation of planetesimals. All of these, however, have assumed in one way or another vertical hydrostatic equilibrium and instantaneous radiative diffusion throughout the disk. In this work we present the first study of the stability of accretion disks to self-shadowing that relaxes these assumptions, relying instead on radiation-hydrodynamical simulations. We first construct hydrostatic disk configurations by means of an iterative procedure and show that the formation of a pattern of enlarged and shadowed regions is a direct consequence of assuming instantaneous radiative diffusion. We then let these solutions evolve in time, which leads to a fast damping of the initial shadowing features in layers close to the disk surface. These thermally relaxed layers grow towards the midplane until all temperature extrema in the radial direction are erased in the entire disk. Our results suggest that radiative cooling and gas advection at the disk surface prevent a self-shadowing instability from forming, by damping temperature perturbations before these reach lower, optically thick regions.
26 pages, 19 figures. Accepted for publication in ApJ. Complementary videos can be found in https://youtu.be/RT8IFe8W13g
References in corpus (24)
- PLUTO: a Numerical Code for Computational Astrophysics
- Gas- and dust evolution in protoplanetary disks
- Radiative transfer in very optically thick circumstellar disks
- Three radial gaps in the disk of TW Hydrae imaged with SPHERE
- Convective Overstability in radially stratified accretion disks under thermal relaxation
- Vertical shear instability in accretion disc models with radiation transport
- Tracing Slow Winds from T Tauri Stars via Low Velocity Forbidden Line Emission
- Radiation Hydrodynamical Turbulence In Protoplanetary Disks: Numerical Models and Observational Constraints
- On the Linear Stability of Weakly-Ionized, Magnetized Planar Shear Flows
- Convective overstability in accretion disks: 3D linear analysis and nonlinear saturation
- 3D Radiation Non-ideal Magnetohydrodynamical Simulations Of The Inner Rim In Protoplanetary Disks
- Baroclinic Vorticity Production in Protoplanetary Disks; Part II: Vortex Growth and Longevity
- Particle dynamics in discs with turbulence generated by the vertical shear instability
- Gas and dust dynamics in starlight-heated protoplanetary disks
- An Implicit Finite Volume Scheme to Solve the Time Dependent Radiation Transport Equation Based on Discrete Ordinates
- Anisotropic hydrodynamic turbulence in accretion disks
- High Resolution Parameter Study of the Vertical Shear Instability
- Are the spiral arms in the MWC 758 protoplanetary disc driven by a companion inside the cavity?
- Modeling the delivery of dust from discs to ionized winds
- Thermal Waves in Irradiated Protoplanetary Disks
- A radiative transfer module for relativistic magnetohydrodynamics in the PLUTO code
- Thermal Wave Instability as an Origin of Gap and Ring Structures in Protoplanetary Disks
- High Resolution Parameter Study of the Vertical Shear Instability II: Dependence on temperature gradient and cooling time
- Dust delivery and entrainment in photoevaporative winds