Three-dimensional modeling of radiative disks in binaries
arXiv:1307.4286 · doi:10.1051/0004-6361/201321860
Abstract
Circumstellar disks in binaries are perturbed by the companion gravity causing significant alterations of the disk morphology. Spiral waves due to the companion tidal force also develop in the vertical direction and affect the disk temperature profile. These effects may significantly influence the process of planet formation. We perform 3D numerical simulations of disks in binaries with different initial dynamical configurations and physical parameters. Our goal is to investigate their evolution and their propensity to grow planets. We use an improved version of the SPH code VINE modified to better account for momentum and energy conservation. The energy equation includes a flux--limited radiative transfer algorithm and the disk cooling is obtained via "boundary particles". We model a system made of star/disk + star/disk where the secondary star (and relative disk) is less massive than the primary. The numerical simulations performed for different values of binary separation and disk density show that the disk morphology is substantially affected by the companion perturbations. Trailing spiral shock waves develop when the stars approach their pericenter. Strong hydraulic jumps occur at the shock front creating breaking waves and a consistent mass stream between the two disks, significantly heating them. The high gas temperature may prevent the ice condensation by moving outward the "snow line". The hydraulic jumps may slow down or even halt the dust coagulation process. At apocenter these perturbations are reduced and the disks are cooled down and less eccentric. The strength of the hydraulic jumps, disk heating, and mass exchange depends on the binary separation, and for larger semi-major axes, the tidal spiral pattern is substantially reduced.
15 pages, 17 figures, accepted for publication in A&A
References in corpus (22)
- SPLASH: An interactive visualisation tool for Smoothed Particle Hydrodynamics simulations
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- Characterization of exoplanets from their formation I: Models of combined planet formation and evolution
- Stellar Multiplicity and the IMF: Most Stars Are Single
- Properties of planets in binary systems. The role of binary separation
- Radiative transfer and the energy equation in SPH simulations of star formation
- On the convergence of the critical cooling timescale for the fragmentation of self-gravitating discs
- Relative velocities among accreting planetesimals in binary systems: the circumprimary case
- Gas accretion onto planetary cores: three-dimensional self-gravitating radiation hydrodynamical calculations
- The frequency of planets in multiple systems
- Planetesimal and gas dynamics in binaries
- iVINE - Ionization in the parallel tree/SPH code VINE: First results on the observed age-spread around O-stars
- Introducing a Hybrid Method of Radiative Transfer for Smoothed Particle Hydrodynamics
- The multiplicity of exoplanet host stars - New low-mass stellar companions of the exoplanet host stars HD125612 and HD212301
- Planet Formation in Binary Stars: The case of Gamma Cephei
- Planet formation in Alpha Centauri A revisited: not so accretion-friendly after all
- Gravitational Instabilities, Chondrule Formation, and the FU Orionis Phenomenon
- VINE -- A numerical code for simulating astrophysical systems using particles I: Description of the physics and the numerical methods
- Planets in binary systems: is the present configuration indicative of the formation process?
- Planetesimal Accretion in Binary Systems: The Effects of Gas Dissipation
- VINE -- A numerical code for simulating astrophysical systems using particles II: Implementation and performance characteristics
- Stellar scattering and the origin of the planet around gamma-cephei-A
Cited by in corpus (23)
- Planet formation in stellar binaries II: overcoming the fragmentation barrier in alpha Centauri and gamma Cephei-like systems
- Planet formation in Binaries
- Planet formation in stellar binaries I: planetesimal dynamics in massive protoplanetary disks
- The GAPS Programme with HARPS-N@TNG V. A comprehensive analysis of the XO-2 stellar and planetary systems
- Planets in Binaries: Formation and Dynamical Evolution
- Spiral patterns in planetesimal circumbinary disks
- On dust evolution in planet-forming discs in binary systems. I -- Theoretical and numerical modelling: radial drift is faster in binary discs
- Effects of stellar flybys on planetary systems: 3D modeling of the circumstellar disks damping effects
- Decoupling of a giant planet from its disk in an inclined binary system
- Planet formation in stellar binaries: Global simulations of planetesimal growth
- Stellar multiplicity affects the correlation between proto-planetary disc masses and accretion rates: binaries explain high-accretors in Upper Sco
- A Gas Giant Planet in the OGLE-2006-BLG-284L Stellar Binary System
- On dust evolution in planet-forming discs in binary systems. II -- Comparison with Taurus and Ophiuchus (sub-)millimetre observations: discs in binaries have small dust sizes
- Asymmetric fundamental band CO lines as a sign of an embedded giant planet
- Disks in close binary stars: γ-Cephei revisited
- Two-dimensional simulations of disks in close binaries: Simulating outburst cycles in cataclysmic variables
- Evolution of Centauri B's protoplanetary disc
- "Horseshoe" Structures in the Debris Disks of Planet-Hosting Binary Stars
- SPH simulations of structures in protoplanetary disks
- Planet-planet scattering in presence of a companion star
- The SPHERE view of multiple star formation
- Gas and dust dynamics in Cephei-type disks
- Selfgravitating disks in binary systems: an SPH approach -- I. Implementation of the code and reliability tests