The Effect of Irradiation on the Jeans Mass in Fragmenting Self-Gravitating Protostellar Discs
arXiv:1301.1151 · doi:10.1093/mnras/stt032
Abstract
When a self-gravitating disc is subject to irradiation, its propensity to fragmentation will be affected. The strength of self-gravitating disc stresses is expected to dictate disc fragmentation: as the strength of these torques typically decrease with increasing sound speed, it is reasonable to assume, to first-order, that disc fragmentation is suppressed when compared to the non-irradiated case, although previous work has shown that the details are complicated by the source of the irradiation. We expand on previous analysis of the Jeans mass inside spiral structures in self-gravitating discs, incorporating the effects of stellar irradiation and background irradiation. If irradiation is present, fragmentation is suppressed for marginally unstable discs at low accretion rates (compared to the no-irradiation case), but these lower accretion rates correspond to higher mass discs. Fragmentation can still occur for high accretion rates, but is consequently suppressed at lower disc surface densities, and the subsequent Jeans mass is boosted. These results further bolster the consensus that, without subsequent fragment disruption or mass loss, the gravitational instability is more likely to form brown dwarfs and low-mass stars than gas giant planets.
8 pages, 14 figures, accepted for publication in MNRAS
References in corpus (10)
- Starbursts near supermassive black holes: young stars in the Galactic Center, and gravitational waves in LISA band
- Characterising the Gravitational Instability in Cooling Accretion Discs
- Simulations of star formation in a gaseous disc around sgr A* - a failed AGN
- The Thermal Regulation of Gravitational Instabilities in Protoplanetary Disks III. Simulations with Radiative Cooling and Realistic Opacities
- The minimum mass for star formation, and the origin of binary brown dwarfs
- Can giant planets form by gravitational fragmentation of discs?
- Properties of gravitoturbulent accretion disks
- Introducing a Hybrid Method of Radiative Transfer for Smoothed Particle Hydrodynamics
- The Thermal Regulation of Gravitational Instabilities in Protoplanetary Disks. IV. Simulations with Envelope Irradiation
- Gravitational Instabilities in Gaseous Protoplanetary Disks and Implications for Giant Planet Formation
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- Towards a population synthesis model of self-gravitating disc fragmentation and tidal downsizing II: The effect of fragment-fragment interactions
- Dawes Review. The tidal downsizing hypothesis of planet formation
- Disc fragmentation rarely forms planetary-mass objects
- Grand challenges in protoplanetary disc modelling
- Tidal Downsizing model. I. Numerical methods: saving giant planets from tidal disruptions
- The Dynamical Fate of Self-Gravitating Disc Fragments After Tidal Downsizing
- Core-assisted gas capture instability: a new mode of giant planet formation by gravitationally unstable discs
- Directly observing continuum emission from self-gravitating spiral waves
- Nonlinear outcome of gravitational instability in an irradiated protoplanetary disc
- Self-gravitating disc candidates around massive young stars
- Giant planets and brown dwarfs on wide orbits: a code comparison project
- Fragmentation favoured in discs around higher mass stars
- Tidal Downsizing Model. IV. Destructive feedback in planets
- Constraining the initial planetary population in the gravitational instability model
- AB Aurigae: Possible evidence of planet formation through the gravitational instability
- A Self-Gravitating Disc Around L1527 IRS?
- Constraints on planet formation via gravitational instability across cosmic time
- Searching for wide-orbit gravitational instability protoplanets with ALMA in the dust continuum
- Protostellar Outflows: a window to the past
- The Role of Discs in the Collapse and Fragmentation of Prestellar Cores