Length-scales and Dynamics of Carina's Western Wall
arXiv:2212.00818 · doi:10.1093/mnras/stac3718
Abstract
We present a variety of analyses of the turbulent dynamics of the boundary of a photo-dissociation region (PDR) in the Carina Nebula using high resolution ALMA observations. Using Principal Component Analysis we suggest that the turbulence in this molecular cloud is driven at large scales. Analysis of the centroid velocity structure functions indicate that the turbulence is dominated by shocks rather than local (in k-space) transport of energy. We further find that length-scales in the range 0.02 - 0.03 pc are important in the dynamics of this cloud and this finding is supported by analysis of the dominant emission structure length-scale. These length-scales are well resolved by the observational data and we conclude that the apparent importance of this range of scales is physical in origin. Given that it is also well within the range strongly influenced by ambipolar diffusion, we conclude that it is not primarily a product of turbulence alone, but is more likely to be a result of the interplay between gravity and turbulence. Finally, through comparison of these results with previous observations of H2 emission from the Western Wall we demonstrate that observations of a PDR can be used to probe the internal structure of the undisturbed portion of a molecular cloud.
13 pages, 9 figures. Accepted to MNRAS
References in corpus (11)
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- The sonic scale revealed by the world's largest supersonic turbulence simulation
- Formation sites of Population III star formation: The effects of different levels of rotation and turbulence on the fragmentation behavior of primordial gas
- Alfvenic Turbulence Beyond the Ambipolar Diffusion Scale
- Magnetic field fluctuations in anisotropic, supersonic turbulence
- Turbulence in a self-gravitating molecular cloud core
- Relationship between turbulence energy and density variance in the Solar neighbourhood molecular clouds
- The relation between the turbulent Mach number and observed fractal dimensions of turbulent clouds
- Nonlinear turbulent dynamo during gravitational collapse
- Testing the Turbulent Origin of the Stellar Initial Mass Function