Protostellar disks formed from rigidly rotating cores
arXiv:0901.2127 · doi:10.1111/j.1365-2966.2009.15293.x
Abstract
Abridged: We use three-dimensional SPH simulations to investigate the collapse of low-mass prestellar cores and the formation and early evolution of protostellar discs. The initial conditions are slightly supercritical Bonnor-Ebert spheres in rigid rotation. The core mass and initial radius are held fixed at M_O=6.1 M_sun and R_O=17,000 AU, and the only parameter that we vary is the initial angular speed Ω_O. Protostellar discs forming from cores with Ω_O<1.35 10d-13 1/s have radii between 100 and 300 AU and are quite centrally concentrated; due to heating by gas infall onto the disc and accretion onto the central object, they are also quite warm, T>100 K, and therefore stable against gravitational fragmentation. In contrast, more rapidly rotating cores form discs which are less concentrated and cooler, and have radii between 400 and 1000 AU; as a consequence they are prone to gravitational fragmentation and the formation of multiple systems. We derive a criterion that predicts whether a rigidly rotating core having given M_O, R_O and Ω_O will produce a protostellar disc which fragments whilst material is still infalling from the core envelope. We then apply this criterion to core samples for which M_O, R_O and Ω_O have been estimated observationally. We conclude that the observed cores are stable against fragmentation at this stage, due to their low angular speeds and the heat delivered at the accretion shock where the infalling material hits the disc.
13 pages, 10 figures, 1 table. Major revision. Accepted for publication in MNRAS
References in corpus (15)
- The mass function of dense molecular cores and the origin of the IMF
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- Pseudo-viscous modeling of self-gravitating discs and the formation of low mass ratio binaries
- The initial conditions of star formation in the Ophiuchus main cloud: Kinematics of the protocluster condensations
- Global Models for the Evolution of Embedded, Accreting Protostellar Disks
- Brown dwarf formation by gravitational fragmentation of massive, extended protostellar discs
- The minimum mass for star formation, and the origin of binary brown dwarfs
- Radiative transfer and the energy equation in SPH simulations of star formation
- Numerical requirements for simulations of self gravitating and non-self gravitating disks
- iVINE - Ionization in the parallel tree/SPH code VINE: First results on the observed age-spread around O-stars
- VINE -- A numerical code for simulating astrophysical systems using particles I: Description of the physics and the numerical methods
- Crystalline silicates as a probe of disk formation history
- Enhanced Dust Emission in the HL Tau Disc: A Low-Mass Companion in Formation?
- VINE -- A numerical code for simulating astrophysical systems using particles II: Implementation and performance characteristics
- Massive Protoplanetary Disks in Orion Beyond the Trapezium Cluster
Cited by in corpus (43)
- On the Role of Disks in the Formation of Stellar Systems: A Numerical Parameter Study of Rapid Accretion
- The Runts of the Litter: Why planets formed through gravitational instability can only be failed binary stars
- The Formation of Low-Mass Binary Star Systems Via Turbulent Fragmentation
- Formation Process of the Circumstellar Disk: Long-term Simulations in the Main Accretion Phase of Star Formation
- Effect of Magnetic Braking on the Circumstellar Disk Formation in a Strongly Magnetized Cloud
- Recurrent Planet Formation and Intermittent Protostellar Outflows Induced by Episodic Mass Accretion
- Evolution of Protostellar Outflow around Low-mass Protostar
- Conditions for Circumstellar Disk Formation: Effects of Initial Conditions and Sink Treatment
- The Origin and Formation of the Circumstellar Disk
- The role of disc self-gravity in the formation of protostars and protostellar discs
- The Angular Momentum of Magnetized Molecular Cloud Cores: A 2D-3D Comparison
- The Supernova Triggered Formation and Enrichment of Our Solar System
- Impact of Protostellar Outflow on Star Formation: Effects of Initial Cloud Mass
- Massive Outflows Driven by Magnetic Effects in Star Forming Clouds with High Mass Accretion Rates
- Disk Dispersal: Theoretical Understanding and Observational Constraints
- Gravitational instability in protostellar disks at low metallicities
- The First Two Thousand Years of Star Formation
- Protostellar discs formed from turbulent cores
- The influence of the turbulent perturbation scale on prestellar core fragmentation and disk formation
- Accretion Phase of Star Formation in Clouds with Different Metallicities
- The Dynamical Fate of Self-Gravitating Disc Fragments After Tidal Downsizing
- A quantification of the non-spherical geometry and accretion of collapsing cores
- Simulating star formation in Ophiuchus
- Three intermediate-mass YSOs with different properties emerging from the same natal cloud in IRAS 00117+6412
- Simulations of star formation in Ophiuchus, II: Multiplicity
- Formation and Early Evolution of Circumstellar Disks in Turbulent Molecular Cloud Cores
- Sub-Keplerian accretion onto circumstellar disks
- Formation and evolution of a protoplanetary disk: combining observations, simulations and cosmochemical constraints
- Flow-Driven Cloud Formation and Fragmentation: Results From Eulerian and Lagrangian Simulations
- The Maximum Mass Solar Nebula and the early formation of planets
- Magnetic field and early evolution of circumstellar disks
- The evolution of temperature and density structures of OB cluster-forming molecular clumps
- Classification of the Circumstellar Disk Evolution During the Main Accretion Phase
- On the effects of solenoidal and compressive turbulence in prestellar cores
- Different Modes of Star Formation: Gravitational Collapse of Magnetically Subcritical Cloud
- The intrinsic shapes of starless cores in Ophiuchus
- Growth of Magnetorotational Instability in Circumstellar Disks around Class 0 Protostars
- A Lower Angular Momentum Limit for Self-Gravitating Protostellar Disc Fragmentation
- Gravitational Fragmentation of Extremely Metal-poor Circumstellar Discs
- ANTIHEROES-PRODIGE: Quantifying the connection from envelope to disk with the IRAM 30m telescope and NOEMA I. Attack of the streamers: L1448N's fight for order in the chaos
- The Role of Discs in the Collapse and Fragmentation of Prestellar Cores
- Recent Developments in Simulations of Low-mass Star Formation
- Relaxation of protostellar accretion shocks using the smoothed particle hydrodynamics