Global Gravitational Instabilities in Discs with Infall
arXiv:1012.0724 · doi:10.1111/j.1365-2966.2010.18146.x
Abstract
Gravitational instability plays an important role in driving gas accretion in massive protostellar discs. Particularly strong is the global gravitational instability, which arises when the disc mass is of order 0.1 of the mass of the central star and has a characteristic spatial scale much greater than the disc's vertical scale-height. In this paper we use three-dimensional numerical hydrodynamics to study the development of gravitational instabilities in a disc which is embedded in a dense, gaseous envelope. We find that global gravitational instabilities are the dominant mode of angular momentum transport in the disc with infall, in contrast to otherwise identical isolated discs. The accretion torques created by low-order, global modes of the gravitational instability in a disc subject to infall are larger by a factor of several than an isolated disc of the same mass. We show that this global gravitational instability is driven by the strong vertical shear at the interface between the disc and the envelope, and suggest that this process may be an important means of driving accretion on to young stars.
11 pages, 11 figures, Accepted by MNRAS
References in corpus (18)
- SPLASH: An interactive visualisation tool for Smoothed Particle Hydrodynamics simulations
- Protoplanetary Disk Structures in Ophiuchus
- Accretion disc viscosity: how big is alpha?
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- The Burst Mode of Protostellar Accretion
- Starbursts near supermassive black holes: young stars in the Galactic Center, and gravitational waves in LISA band
- The burst mode of accretion and disk fragmentation in the early embedded stages of star formation
- The Two Modes of Gas Giant Planet Formation
- Characterising the Gravitational Instability in Cooling Accretion Discs
- Fragmentation of Massive Protostellar Disks
- Star Formation Around Super-Massive Black Holes
- Galactic Centre stellar winds and Sgr A* accretion
- The Thermal Regulation of Gravitational Instabilities in Protoplanetary Disks III. Simulations with Radiative Cooling and Realistic Opacities
- Radiative transfer and the energy equation in SPH simulations of star formation
- Properties of gravitoturbulent accretion disks
- Secular evolution of viscous and self-gravitating circumstellar discs
- Self-regulated gravitational accretion in protostellar discs
- Enhanced Dust Emission in the HL Tau Disc: A Low-Mass Companion in Formation?
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