Accretion and magnetic field morphology around Class 0 stage protostellar discs
arXiv:1408.2989 · doi:10.1093/mnras/stu2282
Abstract
We analyse simulations of turbulent, magnetised molecular cloud cores focussing on the formation of Class 0 stage protostellar discs and the physical conditions in their surroundings. We show that for a wide range of initial conditions Keplerian discs are formed in the Class 0 stage already. In particular, we show that even subsonic turbulent motions reduce the magnetic braking efficiency sufficiently in order to allow rotationally supported discs to form. We therefore suggest that already during the Class 0 stage the fraction of Keplerian discs is significantly higher than 50%, consistent with recent observational trends but significantly higher than predictions based on simulations with misaligned magnetic fields, demonstrating the importance of turbulent motions for the formation of Keplerian discs. We show that the accretion of mass and angular momentum in the surroundings of protostellar discs occurs in a highly anisotropic manner, by means of a few narrow accretion channels. The magnetic field structure in the vicinity of the discs is highly disordered, revealing field reversals up to distances of 1000 AU. These findings demonstrate that as soon as even mild turbulent motions are included, the classical disc formation scenario of a coherently rotating environment and a well-ordered magnetic field breaks down. Hence, it is highly questionable to assess the magnetic braking efficiency based on non-turbulent collapse simulation. We strongly suggest that, in addition to the global magnetic field properties, the small-scale accretion flow and detailed magnetic field structure have to be considered in order to assess the likelihood of Keplerian discs to be present.
14 pages, 6 figures, accepted for publication in MNRAS, updated to final version
References in corpus (7)
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Magnetic processes in a collapsing dense core. I Accretion and Ejection
- The impact of magnetic fields on single and binary star formation
- The Fragmentation of Magnetized, Massive Star-Forming Cores with Radiative Feedback
- Disk Formation Enabled by Enhanced Resistivity
- On the Role of Pseudodisk Warping and Reconnection in Protostellar Disk Formation in Turbulent Magnetized Cores
- Tracing the ISM magnetic field morphology: The potential of multi-wavelength polarization measurements
Cited by in corpus (25)
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Non-Ideal Magnetohydrodynamic Effects and Early Formation of Circumstellar Disks
- Interferometric observations of magnetic fields in forming stars
- Episodic accretion: the interplay of infall and disc instabilities
- Forming spectroscopic massive proto-binaries by disk fragmentation
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- Are protoplanetary disks born with vortices? -- Rossby wave instability driven by protostellar infall
- Effect of Angular Momentum Alignment and Strong Magnetic Fields on the Formation of Protostellar Disks
- Dust Polarization Toward Embedded Protostars in Ophiuchus with ALMA. II. IRAS 16293-2422
- Collapse of turbulent massive cores with ambipolar diffusion and hybrid radiative transfer I. Accretion and multiplicity
- PRODIGE -- Envelope to Disk with NOEMA II. Small-scale temperature structure and a streamer feeding the SVS13A protobinary using CH3CN and DCN
- Origin of Misalignments: Protostellar Jet, Outflow, Circumstellar Disc, and Magnetic Field
- Binary Star Formation and the Outflows from their Discs
- A Multi-Scale Picture of Magnetic Field and Gravity from Large-Scale Filamentary Envelope to Core-Accreting Dust Lanes in the High-Mass Star-Forming Region W51
- EVN observations of 6.7 GHz methanol maser polarization in massive star-forming regions IV. Magnetic field strength limits and structure for 7 additional sources
- Mid-Infrared Polarization of Herbig Ae/Be Discs
- Methanol masers reveal the magnetic field of the high-mass protostar IRAS 18089-1732
- The impact of episodic outflow feedback on stellar multiplicity and the star formation efficiency
- A turbulent origin for the complex envelope kinematics in the young low-mass core Per-Bolo 58
- Discs are born eccentric
- Synthetic Modelling of Polarized Dust Emission in Intermediate-Mass YSOs: I: Constraining the Role of Iron Inclusions and Inelastic Relaxation on Grain Alignment with ALMA Polarization
- Protostellar disk accretion in turbulent filaments
- Massive extended streamers feed high-mass young stars
- 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
- Digging into the Interior of Hot Cores with ALMA (DIHCA). VII. Disk candidates around high-mass stars and evidence of anisotropic infall
- The kinematics of the magnetised protostellar core IRAS15398-3359