The Interplay of Magnetic Fields, Fragmentation and Ionization Feedback in High-Mass Star Formation
arXiv:1010.5905 · doi:10.1088/0004-637X/729/1/72
Abstract
Massive stars disproportionately influence their surroundings. How they form has only started to become clear recently through radiation gas dynamical simulations. However, until now, no simulation has simultaneously included both magnetic fields and ionizing radiation. Here we present the results from the first radiation-magnetohydrodynamical (RMHD) simulation including ionization feedback, comparing an RMHD model of a 1000 M_sol rotating cloud to earlier radiation gas dynamical models with the same initial density and velocity distributions. We find that despite starting with a strongly supercritical mass to flux ratio, the magnetic field has three effects. First, the field offers locally support against gravitational collapse in the accretion flow, substantially reducing the amount of secondary fragmentation in comparison to the gas dynamical case. Second, the field drains angular momentum from the collapsing gas, further increasing the amount of material available for accretion by the central, massive, protostar, and thus increasing its final mass by about 50% from the purely gas dynamical case. Third, the field is wound up by the rotation of the flow, driving a tower flow. However, this flow never achieves the strength seen in low-mass star formation simulations for two reasons: gravitational fragmentation disrupts the circular flow in the central regions where the protostars form, and the expanding H II regions tend to further disrupt the field geometry. Therefore, outflows driven by ionization heating look likely to be more dynamically important in regions of massive star formation.
ApJ in press
References in corpus (12)
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Which jet launching mechanism(s) in TTauri stars?
- Stellar Multiplicity and the IMF: Most Stars Are Single
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- Magnetic processes in a collapsing dense core. I Accretion and Ejection
- The impact of magnetic fields on single and binary star formation
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- Magnetic processes in a collapsing dense core. II Fragmentation. Is there a fragmentation crisis ?
- Understanding Spatial and Spectral Morphologies of Ultracompact H II Regions
- Radiation Magnetohydrodynamics Simulation of Proto-Stellar Collapse: Two-Component Molecular Outflow
- X-winds in Action
- Accretion disks around massive stars: Hydrodynamic structure, stability and dust sublimation
Cited by in corpus (147)
- The Star Formation Rate of Turbulent Magnetized Clouds: Comparing Theory, Simulations, and Observations
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
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- Three-dimensional simulation of massive star formation in the disk accretion scenario
- The SILCC project: III. Regulation of star formation and outflows by stellar winds and supernovae
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- Collapse, outflows and fragmentation of massive, turbulent and magnetized prestellar barotropic cores
- Titans of the Early Universe: The Prato Statement on the Origin of the First Supermassive Black Holes
- Importance of the Initial Conditions for Star Formation - I. Cloud Evolution and Morphology
- The Fragmentation of Magnetized, Massive Star-Forming Cores with Radiative Feedback
- Modeling jet and outflow feedback during star cluster formation
- Radiation-magnetohydrodynamic simulations of HII regions and their associated PDRs in turbulent molecular clouds
- Magnetic field amplification in turbulent astrophysical plasmas
- Magnetic fields during the early stages of massive star formation - I. Accretion and disk evolution
- The Small-Scale Dynamo and Non-Ideal MHD in Primordial Star Formation
- Radiation-Hydrodynamic Simulations of the Formation of Orion-Like Star Clusters I. Implications for the Origin of the Initial Mass Function
- Turbulence-induced disc formation in strongly magnetised cloud cores
- Star Cluster Formation in Turbulent, Magnetized Dense Clumps with Radiative and Outflow Feedback
- First hydrodynamics simulations of radiation forces and photoionization feedback in massive star formation
- The mmax-Mecl relation, the IMF and IGIMF: probabilistically sampled functions?
- Disc formation in turbulent massive cores: Circumventing the magnetic braking catastrophe
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- The complex chemistry of hot cores in Sagittarius B2(N): Influence of cosmic-ray ionization and thermal history
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- DR 21(OH): a highly fragmented, magnetized, turbulent dense core
- Fragmentation of massive dense cores down to ~1000 AU: Relation between fragmentation and density structure
- StarBench: The D-type expansion of an HII region
- Simulating the Formation of Massive Protostars: I. Radiative Feedback and Accretion Disks
- Clumps and triggered star formation in ionised molecular clouds
- Collisions in Primordial Star Clusters: Formation Pathway for intermediate mass black holes
- Importance of the Initial Conditions for Star Formation - III: Statistical Properties of Embedded Protostellar Clusters
- Importance of the Initial Conditions for Star Formation - II. Fragmentation Induced Starvation and Accretion Shielding
- Outflow-Confined H II Regions. I. First Signposts of Massive Star Formation
- On the simultaneous evolution of massive protostars and their host cores
- On the stability of radiation-pressure-dominated cavities
- The Effects of Magnetic Fields and Protostellar Feedback on Low-mass Cluster Formation
- Formation and Evolution of Disks around Young Stellar Objects
- Formation of the first stars and black holes
- MUSCLE W49 : A Multi-Scale Continuum and Line Exploration of the Most Luminous Star Formation Region in the Milky Way. I. Data and The Mass Structure of the Giant Molecular Cloud
- Modeling disk fragmentation and multiplicity in massive star formation
- ALMA observations of fragmentation, sub-structure, and protostars in high-mass starless clump candidates
- The SILCC project - V. The impact of magnetic fields on the chemistry and the formation of molecular clouds
- The Pillars of Creation revisited with MUSE: gas kinematics and high-mass stellar feedback traced by optical spectroscopy
- Does the magnetic field suppress fragmentation in massive dense cores?
- Massive Outflows Driven by Magnetic Effects in Star Forming Clouds with High Mass Accretion Rates
- Zooming in on Individual Star Formation: Low- and High-mass Stars
- An improved sink particle algorithm for SPH simulations
- Stellar mass spectrum within massive collapsing clumps II. Thermodynamics and tidal forces of the first Larson core
- Simultaneous low- and high-mass star formation in a massive protocluster: ALMA observations of G11.92-0.61
- Stellar mass spectrum within massive collapsing clumps I. Influence of the initial conditions
- Bondi-Hoyle-Littleton accretion and the upper mass stellar IMF
- Jets and outflows of massive protostars - From cloud collapse to jet launching and cloud dispersal
- The IACOB project. VI. On the elusive detection of massive O-type stars close to the ZAMS
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- Collapse of turbulent massive cores with ambipolar diffusion and hybrid radiative transfer I. Accretion and multiplicity
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- From Poloidal to Toroidal: Detection of Well-ordered Magnetic Field in High-mass Proto-cluster G35.2-0.74N
- DNC/HNC Ratio of Massive Clumps in Early Evolutionary Stages of High-Mass Star Formation
- When H II Regions are Complicated: Considering Perturbations from Winds, Radiation Pressure, and Other Effects
- Synthetic observations of star formation and the interstellar medium
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- Collective outflow from a small multiple stellar system
- Establishing the evolutionary timescales of the massive star formation process through chemistry
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- Planck intermediate results. XXXIV. The magnetic field structure in the Rosette Nebula
- Magnetic fields at the onset of high-mass star formation
- KFPA Examinations of Young STellar Object Natal Environments (KEYSTONE): Hierarchical Ammonia Structures in Galactic Giant Molecular Clouds
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- Simulating protostellar evolution and radiative feedback in the cluster environment
- Low-metallicity star formation: Relative impact of metals and magnetic fields
- Evidence of Short Timescale Flux Density Variations of UC HII regions in Sgr B2 Main and North
- Stellar models and isochrones from low-mass to massive stars including pre-main sequence phase with accretion
- A general hybrid radiation transport scheme for star formation simulations on an adaptive grid
- Collapse of turbulent massive cores with ambipolar diffusion and hybrid radiative transfer II. Outflows
- Star formation with disc accretion and rotation I. Stars between 2 and 22 Msol at solar metallicity
- Formation of massive stars under protostellar radiation feedback: Very metal-poor stars
- How first hydrostatic cores, tidal forces and gravo-turbulent fluctuations set the characteristic mass of stars
- Measuring the ionisation fraction in a jet from a massive protostar
- Galactic magnetic fields and hierarchical galaxy formation
- Star formation efficiencies of molecular clouds in a galactic center environment
- EVN observations of 6.7 GHz methanol maser polarization in massive star-forming regions III. The flux-limited sample
- Are molecular outflows around high-mass stars driven by ionization feedback?
- Kinematics and stability of high-mass protostellar disk candidates at sub-arcsecond resolution -- Insights from the IRAM NOEMA large program CORE
- Deuterium fractionation and H2D+ evolution in turbulent and magnetized cloud cores
- How magnetic field and stellar radiative feedback influences the collapse and the stellar mass spectrum of a massive star forming clump
- Cosmological simulations of the same spiral galaxy: the impact of baryonic physics
- Protostellar Outflows at the EarliesT Stages (POETS). III. H2O masers tracing disk-winds and jets near luminous YSOs
- A young stellar cluster within the RCW41 HII region: deep NIR photometry and Optical/NIR polarimetry
- Fragmentation, rotation and outflows in the high-mass star-forming region IRAS 23033+5951. A case study of the IRAM NOEMA large program CORE
- The link between solenoidal turbulence and slow star formation in G0.253+0.016
- Are there any first-generation stars in globular clusters today?
- EVN observations of 6.7-GHz methanol maser polarization in massive star-forming regions II. First statistical results
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- The supernova-regulated ISM -- VI. Magnetic effects on the structure of the interstellar medium
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- Star Cluster Formation from Turbulent Clumps. III. Across the mass spectrum
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- Formation of multiple low mass stars, brown dwarfs and planemos via gravitational collapse
- The magnetic field at milliarcsecond resolution around IRAS20126+4104
- Anatomy of the massive star-forming region S106: The OI 63 micron line observed with GREAT/SOFIA as a versatile diagnostic tool for the evolution of massive stars
- Radiatively driven Rayleigh-Taylor instability candidates around a forming massive star system: NACO adaptive optics and VISIR study of G333.6-0.2
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- Structure, Dynamics and Deuterium Fractionation of Massive Pre-Stellar Cores
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- Multi-wavelength modelling of the circumstellar environment of the massive proto-star AFGL 2591 VLA 3
- Numerical dependencies of the galactic dynamo in isolated galaxies with SPH
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- The Dynamics of Ultracompact HII Regions
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- Magnetic fields in Bok globules: Multi-wavelength polarimetry as tracer across large spatial scales
- Numerical Methods for Simulating Star Formation
- Fire from Ice - Massive Star Birth from Infrared Dark Clouds
- The Star Formation Factory revisited I. The impact of metallicity on collapsing star-forming clouds
- An Improved Fit to the Density Distribution in Supersonic Isothermal Turbulence
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- Fast spectral line calculations with the escape probability method and tests with synthetic observations of interstellar clouds