Flux-limited diffusion approximation models of giant planet formation by disk instability

被引:32
|
作者
Boss, Alan P. [1 ]
机构
[1] Carnegie Inst Washington, Dept Terr Magnetism, Washington, DC 20015 USA
来源
ASTROPHYSICAL JOURNAL | 2008年 / 677卷 / 01期
关键词
accretion; accretion disks; hydrodynamics; instabilities; planetary systems : formation; solar system : formation;
D O I
10.1086/533496
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Both core accretion and disk instability appear to be required as formation mechanisms in order to explain the entire range of giant planets found in extrasolar planetary systems. Disk instability is based on the formation of clumps in a marginally gravitationally unstable protoplanetary disk. These clumps can only be expected to contract and survive to become protoplanets if they are able to lose thermal energy through a combination of convection and radiative cooling. Here we present several new three-dimensional, radiative hydrodynamics models of self-gravitating protoplanetary disks, where radiative transfer is handled in the flux-limited diffusion approximation. We show that while the flux-limited models lead to higher midplane temperatures than in a diffusion approximation model without the flux limiter, the difference in temperatures does not appear to be sufficiently high to have any significant effect on the formation of self-gravitating clumps. Self-gravitating clumps form rapidly in the models both with and without the flux limiter. These models suggest that the reason for the different outcomes of numerical models of disk instability by different groups cannot be attributed solely to the handling of radiative transfer, but rather appears to be caused by a range of numerical effects and assumptions. Given the observational imperative to have disk instability form at least some extrasolar planets, these models imply that disk instability remains as a viable giant planet formation mechanism.
引用
收藏
页码:607 / 615
页数:9
相关论文
共 50 条
  • [41] A Multidimensional Radiation Magnetohydrodynamics Code Based on Flux-Limited Diffusion and HLLD
    Yang, Xiaohong
    Yuan, Feng
    [J]. PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF JAPAN, 2012, 64 (04) : 69
  • [42] Multigroup radiation hydrodynamics with flux-limited diffusion and adaptive mesh refinement
    Gonzalez, M.
    Vaytet, N.
    Commercon, B.
    Masson, J.
    [J]. ASTRONOMY & ASTROPHYSICS, 2015, 578
  • [43] BOUNDEDNESS IN A FLUX-LIMITED CHEMOTAXIS-HAPTOTAXIS MODEL WITH NONLINEAR DIFFUSION
    Wang, Hui
    Zheng, Pan
    Hu, Runlin
    [J]. EVOLUTION EQUATIONS AND CONTROL THEORY, 2023, 12 (04): : 1133 - 1144
  • [44] Radiation-hydrodynamics with MPI-AMRVAC Flux-limited diffusion
    Moens, N.
    Sundqvist, J. O.
    El Mellah, I
    Poniatowski, L.
    Teunissen, J.
    Keppens, R.
    [J]. ASTRONOMY & ASTROPHYSICS, 2022, 657
  • [45] Closure in flux-limited neutrino diffusion and two-moment transport
    Smit, JM
    van den Horn, LJ
    Bludman, SA
    [J]. ASTRONOMY & ASTROPHYSICS, 2000, 356 (02) : 559 - 569
  • [46] A FLUX-LIMITED DIFFUSION-MODEL FOR CHARGED-PARTICLE TRANSPORT
    DORR, MR
    PAINTER, JF
    PERKINS, ST
    [J]. NUCLEAR SCIENCE AND ENGINEERING, 1986, 94 (02) : 157 - 166
  • [47] INITIAL AND BOUNDARY-CONDITIONS FOR FLUX-LIMITED DIFFUSION-THEORY
    POMRANING, GC
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 1988, 75 (01) : 73 - 85
  • [48] MAXIMUM-ENTROPY EDDINGTON FACTORS IN FLUX-LIMITED NEUTRINO DIFFUSION
    CERNOHORSKY, J
    VANDENHORN, LJ
    COOPERSTEIN, J
    [J]. JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 1989, 42 (06): : 603 - 613
  • [49] The Role of Early Giant-planet Instability in Terrestrial Planet Formation
    Nesvorny, David
    Roig, Fernando V.
    Deienno, Rogerio
    [J]. ASTRONOMICAL JOURNAL, 2021, 161 (02):
  • [50] Predictions of ECS and SSC models for flux-limited samples of γ-ray blazars
    Lister, ML
    Marscher, AP
    [J]. ASTROPARTICLE PHYSICS, 1999, 11 (1-2) : 65 - 67