Collapse and Fragmentation of Molecular Cloud Cores. X. Magnetic Braking of Prolate and Oblate Cores
arXiv:0903.1810 · doi:10.1088/0004-637X/697/2/1940
Abstract
The collapse and fragmentation of initially prolate and oblate, magnetic molecular clouds is calculated in three dimensions with a gravitational, radiative hydrodynamics code. The code includes magnetic field effects in an approximate manner: magnetic pressure, tension, braking, and ambipolar diffusion are all modelled. The parameters varied for both the initially prolate and oblate clouds are the initial degree of central concentration of the radial density profile, the initial angular velocity, and the efficiency of magnetic braking (represented by a factor or ). The oblate cores all collapse to form rings that might be susceptible to fragmentation into multiple systems. The outcome of the collapse of the prolate cores depends strongly on the initial density profile. Prolate cores with central densities 20 times higher than their boundary densities collapse and fragment into binary or quadruple systems, whereas cores with central densities 100 times higher collapse to form single protostars embedded in bars. The inclusion of magnetic braking is able to stifle protostellar fragmentation in the latter set of models, as when identical models were calculated without magnetic braking (Boss 2002), those cores fragmented into binary protostars. These models demonstrate the importance of including magnetic fields in studies of protostellar collapse and fragmentation, and suggest that even when magnetic fields are included, fragmentation into binary and multiple systems remains as a possible outcome of protostellar collapse.
20 pages, 8 figures. Astrophysical Journal, in press
References in corpus (16)
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- Magnetic processes in a collapsing dense core. I Accretion and Ejection
- The impact of magnetic fields on single and binary star formation
- Magnetic Fields in Dark Cloud Cores: Arecibo OH Zeeman Observations
- Magnetic processes in a collapsing dense core. II Fragmentation. Is there a fragmentation crisis ?
- The effect of magnetic fields on star cluster formation
- Magnetic Fields and Rotations of Protostars
- Formation Scenario for Wide and Close Binary Systems
- A Multiplicity Census of Young Stars in Chamaeleon I
- Core Mass Function: The Role of Gravity
- ATCA and Spitzer Observations of the Binary Protostellar Systems CG30 and BHR71
- Binary Formation in Star-Forming Clouds with Various Metallicities
- On the Evolution of the Dense Core Mass Function
- Protostellar collapse: A comparison between SPH and AMR calculations
- Simulating hydromagnetic processes in star formation: introducing ambipolar diffusion into an adaptive mesh refinement code
- Three-dimensional simulations of molecular cloud fragmentation regulated by magnetic fields and ambipolar diffusion
Cited by in corpus (10)
- The Origin and Formation of the Circumstellar Disk
- The Gemini NICI Planet-Finding Campaign: Discovery of a Multiple System Orbiting the Young A Star HD 1160
- The role of magnetic fields in the formation of protostellar discs
- The Angular Momentum of Magnetized Molecular Cloud Cores: A 2D-3D Comparison
- The nonisothermal stage of magnetic star formation. II. Results
- The Small-Scale Physical Structure and Fragmentation Difference of Two Embedded Intermediate Mass Protostars in Orion
- Collapse and Fragmentation of Magnetic Molecular Cloud Cores with the Enzo AMR MHD Code. I. Uniform Density Sphere
- Evolution of Prolate Molecular Clouds at HII Boundaries: I. Formation of fragment-core structures
- Collapse and Fragmentation of Magnetic Molecular Cloud Cores with the Enzo AMR MHD Code. II. Prolate and Oblate Cores
- Barnard 59: No Evidence for Further Fragmentation