The Role of Turbulence and Magnetic Fields in Simulated Filamentary Structure
arXiv:1501.05999 · doi:10.1088/0004-637X/802/2/75
Abstract
We use numerical simulations of turbulent cluster-forming regions to study the nature of dense filamentary structures in star formation. Using four hydrodynamic and magnetohydrodynamic simulations chosen to match observations, we identify filaments in the resulting column density maps and analyze their properties. We calculate the radial column density profiles of the filaments every 0.05 Myr and fit the profiles with the modified isothermal and pressure confined isothermal cylinder models, finding reasonable fits for either model. The filaments formed in the simulations have similar radial column density profiles to those observed. Magnetic fields provide additional pressure support to the filaments, making `puffier' filaments less prone to fragmentation than in the pure hydrodynamic case, which continue to condense at a slower rate. In the higher density simulations, the filaments grow faster through the increased importance of gravity. Not all of the filaments identified in the simulations will evolve to form stars: some expand and disperse. Given these different filament evolutionary paths, the trends in bulk filament width as a function of time, magnetic field strength, or density, are weak, and all cases are reasonably consistent with the finding of a constant filament width in different star-forming regions. In the simulations, the mean FWHM lies between 0.06 and 0.26 pc for all times and initial conditions, with most lying between 0.1 to 0.15 pc; the range in FWHMs are, however, larger than seen in typical Herschel analyses. Finally, the filaments display a wealth of substructure similar to the recent discovery of filament bundles in Taurus.
18 pages, 8 figures, 7 tables. Accepted for publication in ApJ
References in corpus (13)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- Filamentary structure of star-forming complexes
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The Large and Small Scale Structures of Dust in the Star-Forming Perseus Molecular Cloud
- An Ammonia Spectral Atlas of Dense Cores in Perseus
- On the nature of star-forming filaments: I. Filament morphologies
- The dynamical properties of dense filaments in the infrared dark cloud G035.39-00.33
- CARMA Large Area Star Formation Survey: Observational Analysis of Filaments in the Serpens South Molecular Cloud
- Supersonic turbulence, filamentary accretion,and the rapid assembly of massive stars and disks
- SCUBA and Spitzer observations of the Taurus molecular cloud - pulling the bull's tail
- On the equilibrium of rotating filaments
Cited by in corpus (23)
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- A dynamically young, gravitationally stable network of filaments in Orion B
- The role of the magnetic field in the fragmentation process: the case of G14.225-0.506
- A Magnetic Ribbon Model for Star-Forming Filaments
- The relation between the turbulent Mach number and observed fractal dimensions of turbulent clouds
- Star-forming filament models
- Dissecting the super-critical filaments embedded in the 0.5 pc subsonic region of Barnard 5
- The widths of magnetised filaments in molecular clouds
- Dust in the Wind with Resonant Drag Instabilities: I. The Dynamics of Dust-Driven Outflows in GMCs and HII Regions
- The origin of a universal filament width in molecular clouds
- Synthetic line and continuum observations of simulated turbulent clouds: the apparent widths of filaments
- Necessary conditions for the formation of filaments and star clusters in the cold neutral medium
- On the 3D Curvature and Dynamics of the Musca filament
- Spiral Structure and Massive Star formation in the Hub-Filament-System G326.27-0.49
- Filament Intersections and Cold Dense Cores in Orion A North
- Effect of magnetic field on the rotating filamentary molecular clouds
- Non-ideal magnetohydrodynamics of self-gravitating filaments
- Decaying turbulence in molecular clouds: how does it affect filament networks and star formation?
- Tracing the magnetic field morphology of the LDN 1172/1174 cloud complex
- Line emission from filaments in molecular clouds
- Touching the Stars: Using High-Resolution 3D Printing to Visualize Stellar Nurseries
- A systematic bias in fitting the surface-density profiles of interstellar filaments
- Comparison of Herschel and ArTéMiS observations of massive filaments