Measuring the filamentary structure of interstellar clouds through wavelets
arXiv:1811.02082 · doi:10.1051/0004-6361/201731596
Abstract
The ubiquitous presence of filamentary structures in the interstellar medium asks for an unbiased characterization of their properties including a stability analysis. We propose a novel technique to measure the spectrum of filaments in any two-dimensional data set. Using anisotropic wavelets we can quantify and distinguish local and global anisotropies and measure the size distribution of filaments. The wavelet analysis does not need any assumptions on the alignment or shape of filaments in the maps, but directly measures their typical spatial dimensions. In a rigorous test program, we calibrate the scale-dependence of the method and test the angular and spatial sensitivity. We apply the method to molecular line maps from magneto-hydrodynamic (MHD) simulations and observed column density maps from Herschel observations. When applying the anisotropic wavelet analysis to the MHD data, we find that the observed filament sizes depend on the combination of magnetic-field dominated density-velocity correlations with radiative transfer effects. This can be exploited by observing tracers with different optical depth to measure the transition from a globally ordered large-scale structure to small-scale filaments with entangled field lines. The unbiased view to Herschel column density maps does not confirm a universal characteristic filament width. The map of the Polaris Flare shows an almost scale-free filamentary spectrum up to the size of the dominating filament of about 0.4pc. For the Aquila molecular cloud the range of filament widths is limited to 0.05-0.2pc. The filaments in Polaris show no preferential direction in contrast to the global alignment that we trace in Aquila. By comparing the power in isotropic and anisotropic structures we can measure the relative importance of spherical and cylindrical collapse modes and their spatial distribution.
Accepted for publication by A&A
References in corpus (9)
- What determines the density structure of molecular clouds ? A case study of Orion B with Herschel
- Analysis of spiral arms using anisotropic wavelets: gas, dust and magnetic fields in M51
- A closer look at the "characteristic" width of molecular cloud filaments
- A Mexican Hat with holes: calculating low resolution power spectra from data with gaps
- Structure analysis of interstellar clouds: I. Improving the Delta-variance method
- Interstellar filaments and star formation
- Measuring the Alfvenic Nature of the Interstellar Medium: Velocity Anisotropy Revisited
- Opacity Broadening of CO Linewidths and its Effect on the Variance-Sonic Mach Number Relation
- Stability of filaments in star-forming clouds and the formation of prestellar cores in them
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- Understanding star formation in molecular clouds IV. Column density PDFs from quiescent to massive molecular clouds
- Formation of the Musca filament: Evidence for asymmetries in the accretion flow due to a cloud-cloud collision
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- The Power Spectra of Polarized, Dusty Filaments
- The role of Galactic HII regions in the formation of filaments. High-resolution submilimeter imaging of RCW 120 with ArTéMiS
- The structure and characteristic scales of molecular clouds
- TRAO Survey of the nearby filamentary molecular clouds, the universal nursery of stars (TRAO FUNS). II. Filaments and Dense cores in IC 5146
- CO~() Observations toward Filamentary Molecular Clouds in the Galactic Region with $l = [169\arcdeg.75, 174\arcdeg.75], b = [-0\arcdeg.75, 0\arcdeg.5]$
- Velocity-Coherent Substructure in TMC-1: Inflow and Fragmentation
- CMR exploration I -- filament structure with synthetic observations