Dynamics of Circumstellar Disks
arXiv:astro-ph/9802191 · doi:10.1086/305869
Abstract
We present a series of 2-dimensional hydrodynamic simulations of massive disks around protostars. We simulate the same physical problem using both a `Piecewise Parabolic Method' (PPM) code and a `Smoothed Particle Hydrodynamic' (SPH) code, and analyze their differences. The disks studied here range in mass from to and in initial minimum Toomre value from 1.1 to 3.0. For this problem, the strengths of the codes overlap only in a limited fashion, but similarities exist in their predictions, including spiral arm pattern speeds and morphological features. Our results represent limiting cases (i.e. systems evolved isothermally) rather than true physical systems. Disks become active from the inner regions outward. From the earliest times, their evolution is a strongly dynamic process rather than a smooth progression toward eventual nonlinear behavior. We calculate approximate growth rates for the spiral patterns; the one-armed () spiral arm is not the fastest growing pattern of most disks. In our SPH simulations, disks with initial minimum or lower break up into proto-binary or proto-planetary clumps. However, these simulations cannot follow the physics important for the flow and must be terminated before the system has completely evolved. At their termination, PPM simulations with similar initial conditions show uneven mass distributions within spiral arms, suggesting that clumping behavior might result if they were carried further. Concern that the point-like nature of SPH exaggerates clumping, that our representation of the gravitational potential in PPM is too coarse, and that our physics assumptions are too simple, suggest caution in interpretation of the clumping in both the disk and torus simulations.
66 pages including 24 encapsulated figures. Accepted by the Astrophysical Journal
Cited by in corpus (52)
- Nonlinear Outcome of Gravitational Instability in Cooling, Gaseous Disks
- The Burst Mode of Protostellar Accretion
- Episodic accretion in magnetically layered protoplanetary discs
- Formation of giant planets by fragmentation of protoplanetary disks
- The Origin of Episodic Accretion Bursts in the Early Stages of Star Formation
- The effect of cooling on the global stability of self-gravitating protoplanetary discs
- Oligarchic growth of giant planets
- The Two Modes of Gas Giant Planet Formation
- Characterization of exoplanets from their formation II: The planetary mass-radius relationship
- Clumps in the Outer Disk by Disk Instability: Why They are Initially Gas Giants and the Legacy of Disruption
- The evolution of gravitationally unstable protoplanetary disks: fragmentation and possible giant planet formation
- The Thermal Regulation of Gravitational Instabilities in Protoplanetary Disks II. Extended Simulations with Varied Cooling Rates
- Planet formation is unlikely in equal mass binary systems with a ~ 50 AU
- Numerical requirements for simulations of self gravitating and non-self gravitating disks
- Substellar companions and isolated planetary mass objects from protostellar disc fragmentation
- Dynamics of Circumstellar Disks II: Heating and Cooling
- On The Possibility of Enrichment and Differentiation in Gas Giants During Birth by Disk Instability
- Tests of Spurious Transport in Smoothed Particle Hydrodynamics
- The Heavy Element Composition of Disk Instability Planets Can Range From Sub- to Super-Nebular
- Ionizing Radiation in Smoothed Particle Hydrodynamics
- VINE -- A numerical code for simulating astrophysical systems using particles I: Description of the physics and the numerical methods
- The Role of Tidal Interactions in Star Formation
- Early planet formation as a trigger for further planet formation
- Using the PPML approach for constructing a low-dissipation, operator-splitting scheme for numerical simulations of hydrodynamic flows
- Dust Distribution in Gas Disks. A Model for the Ring Around HR 4796A
- Astrometric signatures of self-gravitating protoplanetary discs
- Giant Planet Formation by Disk Instability: A Comparison Simulation With An Improved Radiative Scheme
- Dust Distribution in Gas Disks II: Self Induced Ring Formation Through a Clumping Instability
- On the Early Evolution of Forming Jovian Planets I: Initial Conditions, Systematics and Qualitative Comparisons to Theory
- From Disks to Planets
- Solar Nebula Magnetohydrodynamics
- Dynamics of Circumstellar Disks III: The case of GG Tau A
- Simulations of planet-disc interactions using Smoothed Particle Hydrodynamics
- Simulations of Gaseous Disc-Embedded Planet Interaction
- The spectral energy distribution of self-gravitating protostellar disks
- One-armed spirals in locally isothermal, radially structured self-gravitating discs
- Global Spiral Modes in NGC 1566: Observations and Theory
- High-Resolution Optical and Near-Infrared Images of the FS Tauri Circumbinary Disk
- Fragmentation of Kozai-Lidov Disks
- Analysis of the arm-like structure in the outer disk of PDS 70. Spiral density wave or vortex?
- High resolution simulations of unstable modes in a collisionless disc
- The evolution of self-gravitating accretion discs
- Fragmentation of protoplanetary disks around M-dwarfs
- One-Armed Spiral Instability in Double-Degenerate Post-Merger Accretion Disks
- Dust Growth and Dynamics in Protoplanetary Nebulae: Implications for Opacity, Thermal Profile and Gravitational Instability
- The Formation of Fragments at Corotation in Isothermal Protoplanetary Disks
- Interpreting observations of edge-on gravitationally unstable accretion flows
- Global Spiral Density Wave Modes in Protoplanetary Disks: Morphology of Spiral Arms
- Dynamics of Core Accretion
- A 3D Hydrodynamics Study of Gravitational Instabilities in a Young Circumbinary Disc
- Collisions of young disc galaxies in the early universe
- Selfgravitating disks in binary systems: an SPH approach -- I. Implementation of the code and reliability tests