The influence of the turbulent perturbation scale on prestellar core fragmentation and disk formation
arXiv:1109.0280 · doi:10.1111/j.1365-2966.2011.19741.x
Abstract
The collapse of weakly turbulent prestellar cores is a critical stage in the process of star formation. Being highly non-linear and stochastic, the outcome of collapse can only be explored theoretically by performing large ensembles of numerical simulations. Standard practice is to quantify the initial turbulent velocity field in a core in terms of the amount of turbulent energy (or some equivalent) and the exponent in the power spectrum (n \equiv -d log Pk /d log k). In this paper, we present a numerical study of the influence of the details of the turbulent velocity field on the collapse of an isolated, weakly turbulent, low-mass prestellar core. We show that, as long as n > 3 (as is usually assumed), a more critical parameter than n is the maximum wavelength in the turbulent velocity field, λ_MAX. This is because λ_MAX carries most of the turbulent energy, and thereby influences both the amount and the spatial coherence of the angular momentum in the core. We show that the formation of dense filaments during collapse depends critically on λ_MAX, and we explain this finding using a force balance analysis. We also show that the core only has a high probability of fragmenting if λ_MAX > 0.5 R_CORE (where R_CORE is the core radius); that the dominant mode of fragmentation involves the formation and break-up of filaments; and that, although small protostellar disks (with radius R_DISK <= 20 AU) form routinely, more extended disks are rare. In turbulent, low-mass cores of the type we simulate here, the formation of large, fragmenting protostellar disks is suppressed by early fragmentation in the filaments.
11 pages, 7 figures; accepted for publication by MNRAS
References in corpus (19)
- The Statistics of Supersonic Isothermal Turbulence
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- The Formation of Low-Mass Binary Star Systems Via Turbulent Fragmentation
- Fragmentation of Massive Protostellar Disks
- Global Models for the Evolution of Embedded, Accreting Protostellar Disks
- Radiative transfer and the energy equation in SPH simulations of star formation
- Radiation driven implosion and triggered star formation
- The Origin and Formation of the Circumstellar Disk
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- The importance of episodic accretion for low-mass star formation
- SEREN - A new SPH code for star and planet formation simulations
- Smoothed Particle Hydrodynamics simulations of expanding HII regions. I. Numerical methods and tests
- The initial conditions of star formation VIII: an observational study of the Ophiuchus cloud L1688 and implications for the prestellar core mass function
- The lower limits of disc fragmentation and the prospects for observing fragmenting discs
- Star formation in molecular cores III. The effect of the turbulent power spectrum
- Simulating star formation in molecular cloud cores IV. The role of turbulence and thermodynamics
Cited by in corpus (37)
- The Big Problems in Star Formation: the Star Formation Rate, Stellar Clustering, and the Initial Mass Function
- Dispersal of molecular clouds by ionising radiation
- The energy and momentum input of supernova explosions in structured and ionised molecular clouds
- Filaments in Simulations of Molecular Cloud Formation
- Conditions for Circumstellar Disk Formation: Effects of Initial Conditions and Sink Treatment
- Filamentary fragmentation in a turbulent medium
- The Formation of Population III Stars in Gas Accretion Stage: Effects of Magnetic Fields
- Clumps and triggered star formation in ionised molecular clouds
- Photoionisation Feedback in a Self-Gravitating, Magnetised, Turbulent Cloud
- Episodic accretion, protostellar radiative feedback, and their role in low-mass star formation
- Massive Outflows Driven by Magnetic Effects in Star Forming Clouds with High Mass Accretion Rates
- An improved sink particle algorithm for SPH simulations
- The Necessity of Feedback Physics in Setting the Peak of the Initial Mass Function
- FEEDBACK: a SOFIA Legacy Program to Study Stellar Feedback in Regions of Massive Star Formation
- Revealing the dynamics of Class 0 protostellar discs with ALMA
- The First Two Thousand Years of Star Formation
- Comparing simulations of ionisation triggered star formation and observations in RCW 120
- Accretion Phase of Star Formation in Clouds with Different Metallicities
- Isothermal Fragmentation: Is there a low-mass cut-off?
- Simulating star formation in Ophiuchus
- Synthetic observations of star formation and the interstellar medium
- Formation and Early Evolution of Circumstellar Disks in Turbulent Molecular Cloud Cores
- The Formation Conditions of the Wide Binary Class 0 Protostars within BHR 71
- Spatial distribution of star formation related to ionized regions throughout the inner Galactic plane
- Protostellar accretion traced with chemistry: Comparing synthetic C18O maps of embedded protostars to real observations
- Magnetic field and early evolution of circumstellar disks
- Star Formation in a Turbulent Framework: From Giant Molecular Clouds to Protostars
- 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
- Evolution of Hubble wedges in episodic protostellar outflows
- The impact of episodic outflow feedback on stellar multiplicity and the star formation efficiency
- Gravitational Fragmentation of Extremely Metal-poor Circumstellar Discs
- Protostellar Outflows: a window to the past
- Episodic accretion in binary protostars emerging from self-gravitating solar mass cores
- The Role of Discs in the Collapse and Fragmentation of Prestellar Cores
- The extreme initial kinetic energy allowed by a collapsing turbulent core