Collapse and Fragmentation of Rotating Magnetized Clouds. II. Binary Formation and Fragmentation of First Cores
arXiv:astro-ph/0506440 · doi:10.1111/j.1365-2966.2005.09327.x
Abstract
Subsequent to Paper I, the evolution and fragmentation of a rotating magnetized cloud are studied with use of three-dimensional MHD nested-grid simulations. After the isothermal runaway collapse, an adiabatic gas forms a protostellar first core at the center of the cloud. When the isothermal gas is stable for fragmentation in a contracting disk, the adiabatic core often breaks into several fragments. Conditions for fragmentation and binary formation are studied. All the cores which show fragmentations are geometrically thin, as the diameter-to-thickness ratio is larger than 3. Two patterns of fragmentation are found. (1) When a thin disk is supported by centrifugal force, the disk fragments through a ring configuration (ring fragmentation). This is realized in a fast rotating adiabatic core as Omega >0.2 tau_ff^-1, where Omega and tau_ff represent the angular rotation speed and the free-fall time of the core, respectively. (2) On the other hand, the disk is deformed to an elongated bar in the isothermal stage for a strongly magnetized or rapidly rotating cloud. The bar breaks into 2 - 4 fragments (bar fragmentation). Even if a disk is thin, the disk dominated by the magnetic force or thermal pressure is stable and forms a single compact body. In either ring or bar fragmentation mode, the fragments contract and a pair of outflows are ejected from the vicinities of the compact cores. The orbital angular momentum is larger than the spin angular momentum in the ring fragmentation. On the other hand, fragments often quickly merge in the bar fragmentation, since the orbital angular momentum is smaller than the spin angular momentum in this case. Comparison with observations is also shown.
27 pages, 12 figures, accepted for publication in MNRAS
Cited by in corpus (101)
- Protostellar disk formation and transport of angular momentum during magnetized core collapse
- The impact of magnetic fields on single and binary star formation
- Outflows and Jets from Collapsing Magnetized Cloud Cores
- H II regions: Witnesses to massive star formation
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Protostellar Core Formation
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Non-Ideal Magnetohydrodynamic Effects and Early Formation of Circumstellar Disks
- Magnetic processes in a collapsing dense core. II Fragmentation. Is there a fragmentation crisis ?
- The effect of magnetic fields on star cluster formation
- 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
- SMA Observations of Class 0 Protostars: A High-Angular Resolution Survey of Protostellar Binary Systems
- Formation of Turbulent and Magnetized Molecular Clouds via Accretion Flows of HI Clouds
- Toward understanding the formation of multiple systems - A pilot IRAM-PdBI survey of Class 0 objects
- Recurrent Planet Formation and Intermittent Protostellar Outflows Induced by Episodic Mass Accretion
- Magnetic Fields and Rotations of Protostars
- Gravitational collapse of magnetized clouds. I. Ideal MHD accretion flow
- Collapse of a molecular cloud core to stellar densities: stellar core and outflow formation in radiation magnetohydrodynamics simulations
- Magnetic fields during the early stages of massive star formation - I. Accretion and disk evolution
- Conditions for Circumstellar Disk Formation: Effects of Initial Conditions and Sink Treatment
- Evolution of Protostellar Outflow around Low-mass Protostar
- Formation Scenario for Wide and Close Binary Systems
- The influence of turbulence during magnetized core collapse and its consequences on low-mass star formation
- Turbulence-induced disc formation in strongly magnetised cloud cores
- Observational Evidence for Tidal Interaction in Close Binary Systems
- The Origin and Formation of the Circumstellar Disk
- Analytical theory for the initial mass function: III time dependence and star formation rate
- Second Core Formation and High Speed Jets: Resistive MHD Nested Grid Simulations
- Radiation Magnetohydrodynamics Simulation of Proto-Stellar Collapse: Two-Component Molecular Outflow
- Collapse of a molecular cloud core to stellar densities: the formation and evolution of pre-stellar discs
- The Formation of Population III Stars in Gas Accretion Stage: Effects of Magnetic Fields
- Evolution of Rotating Molecular Cloud Core with Oblique Magnetic Field
- The importance of magnetic fields for the initial mass function of the first stars
- OVRO N2H+ Observations of Class 0 Protostars: Constraints on the Formation of Binary Stars
- Self-gravitational Magnetohydrodynamics with Adaptive Mesh Refinement for Protostellar Collapse
- Conditions for the Formation of First-Star Binaries
- Magneto-Hydrodynamics of Population III Star Formation
- Characterizing magnetic field morphologies in three Serpens protostellar cores with ALMA
- The First Jet in the Universe: Protostellar Jets from the First Stars
- Accretion and magnetic field morphology around Class 0 stage protostellar discs
- Impact of Protostellar Outflow on Star Formation: Effects of Initial Cloud Mass
- Does the magnetic field suppress fragmentation in massive dense cores?
- The collapse of a molecular cloud core to stellar densities using radiation non-ideal magnetohydrodynamics
- Collapse of a molecular cloud core to stellar densities: the radiative impact of stellar core formation on the circumstellar disc
- High-Angular Resolution Dust Polarization Measurements: Shaped B-field Lines in the Massive Star Forming Region Orion BN/KL
- Massive Outflows Driven by Magnetic Effects in Star Forming Clouds with High Mass Accretion Rates
- Hierarchical fragmentation in the Perseus molecular cloud: From the cloud scale to protostellar objects
- Revealing the dynamics of Class 0 protostellar discs with ALMA
- Exploring Magnetic Field Structure in Star-Forming Cores with Polarization of Thermal Dust Emission
- Protostellar Jets Enclosed by Low-velocity Outflows
- IRAM-PdBI Observations of Binary Protostars I: The Hierarchical System SVS13 in NGC1333
- The First Two Thousand Years of Star Formation
- Revealing H2D+ depletion and compact structure in starless and protostellar cores with ALMA
- The lower limits of disc fragmentation and the prospects for observing fragmenting discs
- Modeling the magnetic field in the protostellar source NGC 1333 IRAS 4A
- Effect of Angular Momentum Alignment and Strong Magnetic Fields on the Formation of Protostellar Disks
- What is controlling the fragmentation process in the Infrared Dark Cloud G14.225-0.506? Differet level of fragmentation in twin hubs
- Mass Assembly of Stellar Systems and Their Evolution with the SMA (MASSES). Multiplicity and the Physical Environment in L1448N
- ATCA and Spitzer Observations of the Binary Protostellar Systems CG30 and BHR71
- Binary Formation in Star-Forming Clouds with Various Metallicities
- First Direct Simulation of Brown Dwarf Formation in a Compact Cloud Core
- The Circumbinary Outflow: A Protostellar Outflow Driven by a Circumbinary Disk
- Accretion Phase of Star Formation in Clouds with Different Metallicities
- Binary Formation with Different Metallicities: Dependence on Initial Conditions
- Misalignment of Magnetic Fields, Outflows and Discs in Star-forming Clouds
- Protostellar collapse and fragmentation using an MHD GADGET
- Massive Outflows Driven by Magnetic Effects II: Comparison with Observations
- ALMA observations reveal no preferred outflow--filament and outflow--magnetic field orientations
- An origin of arc structures deeply embedded in dense molecular cloud cores
- The dependence of protostar formation on the geometry and strength of the initial magnetic field
- Outflows driven by Giant Protoplanets
- Magnetic field and early evolution of circumstellar disks
- The Spitzer c2d Survey of Nearby Dense Cores: III: Low Mass Star Formation in a Small Group, L1251B
- Protostellar outflows with Smoothed Particle Magnetohydrodynamics (SPMHD)
- Primordial magnetic fields in Population III star formation: a magnetised resolution study
- Discovery of A Binary System in IRAM 04191+1522
- The Origin of the Rotation Profiles in Star Forming Clouds
- R CrA SMM1A: Fragmentation in A Prestellar Core
- Different Modes of Star Formation: Gravitational Collapse of Magnetically Subcritical Cloud
- Molecular Line Observations of the Small Protostellar Group L1251B
- Fragmentation in the massive G31.41+0.31 protocluster
- Complex Scattered Radiation Fields and Multiple Magnetic Fields in the Protostellar Cluster in NGC 2264
- Triple spiral arms of a triple protostar system imaged in molecular lines
- The role of magnetic fields in the formation of multiple massive stars
- Twin Jets and Close Binary Formation
- Evolution of the Angular Momentum of Molecular Cloud Cores Formed from Filament Fragmentation
- Collapse and Fragmentation of Molecular Cloud Cores. X. Magnetic Braking of Prolate and Oblate Cores
- Magnetic Field in The Isolated Massive Dense Clump IRAS 20126+4104
- Disk fragmentation around a massive protostar: a comparison of two three-dimensional codes
- Delivery of gas onto the circumplanetary disk of giant planets: Planetary-mass dependence of the source region of accreting gas and mass accretion rate
- Driving Conditions of Protostellar Outflows in Different Star-Forming Environments
- Astrophysics in 2005
- Insights into the first and second hydrostatic core stages from numerical simulations
- Theories of the initial mass function
- Formation of low-mass stars and brown dwarfs
- How Does a Protostar Form by Magnetized Gravitational Collapse?
- Recent Developments in Simulations of Low-mass Star Formation
- Historical perspective on astrophysical MHD simulations
- Discs, outflows, and feedback in collapsing magnetized cores
- Synthetic Polarization Maps of an Outflow Zone from Magnetohydrodynamic Simulations
- Dust coagulation during the early stages of star formation: molecular cloud collapse and first hydrostatic core evolution
- Random fragmentation of turbulent molecular clouds lying in the central region of giant galaxies