The kinetic and magnetic energy budget of hub-filament systems during the gravitational fragmentation of molecular clouds
arXiv:2212.10610 · doi:10.1093/mnras/stad1581
Abstract
We present a numerical study of the balance between the gravitational (Eg), kinetic (Ek), and magnetic (Em) energies of structures within a hub-filament system in a simulation of the formation and global hierarchical collapse (GHC) of a giant molecular cloud. For structures defined by various density thresholds, and at different evolutionary stages, we investigate the scaling of the virial parameter, , with mass , and of the Larson ratio, , with column density , where is the 1D velocity dispersion, and is an effective radius. We also investigate these scalings for the corresponding magnetic parameters and . Finally, we compare our numerical results with an observational sample of massive clumps. We find that: 1) and follow similar scalings as their kinetic counterparts, although the ratio Em/Ek decreases as |Eg| increases. 2) The largest objects, defined by the lowest thresholds, tend to appear gravitationally bound (and magnetically supercritical), while their internal substructures tend to appear unbound (and subcritical). This suggests that the latter are being compressed by the infall of their parent structures, and supports earlier suggestions that the measured mass-to-magnetic flux ratio decreases inwards in a centrally-peaked cloud under ideal MHD. 3)~The scatter in the - and - plots is reduced when Ek and Em are plotted directly against Eg, suggesting that the scatter is due to an ambiguity between mass and size. 4) The clumps in our GHC simulation follow the same trends as the observational sample of massive clumps in the - and - diagrams. We conclude that the main controlling parameter of the energy budget in the structures is Eg, with the kinetic and magnetic energies being derived from it.
Accepted for publication in MNRAS
References in corpus (24)
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Physical properties of molecular clouds for the entire Milky Way disk
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- ALMA Reveals the Molecular Medium Fueling the Nearest Nuclear Starburst
- Studies of regular and random magnetic fields in the ISM: statistics of polarization vectors and the Chandrasekhar-Fermi technique
- Cloud-cloud collisions and triggered star formation
- Star Formation in Self-Gravitating Turbulent Fluids
- High-accuracy estimation of magnetic field strength in the interstellar medium from dust polarization
- Does the magnetic field suppress fragmentation in massive dense cores?
- Massive 70 micron quiet clumps II: non-thermal motions driven by gravity in massive star formation?
- Magnetic fields in star formation: a complete compilation of all the DCF estimations
- Energy budget of forming clumps in numerical simulations of collapsing clouds
- Density profile evolution during prestellar core collapse: Collapse starts at the large scale
- The JCMT BISTRO Survey: The Distribution of Magnetic Field Strengths towards the OMC-1 Region
- The effect of photoionising feedback on the shaping of hierarchically-forming stellar clusters
- Revealing Gravitational Collapse in Serpens G3-G6 Molecular Cloud using Velocity Gradients
- Magnetized converging flows towards the hot core in the intermediate/high-mass star-forming region NGC 6334 V
- Observations of magnetic fields surrounding LkH 101 taken by the BISTRO survey with JCMT-POL-2
- Gravity Versus Magnetic Fields in Forming Molecular Clouds
- Studying magnetic fields and dust in M17 using polarized thermal dust emission observed by SOFIA/HAWC+
- Non-adiabatic turbulence driving during gravitational collapse
- Simultaneous evolution of the virial parameter and star formation rate in molecular clumps undergoing global hierarchical collapse
- Evolution of the Hub-filament Structures in IC 5146 in the Context of the Energy Balance of Gravity, Turbulence, and Magnetic Field
- Magnetic fields and Star Formation around HII regions: The S235 complex
Cited by in corpus (4)
- Direct observational evidence of the multi-scale, dynamical mass accretion toward a high-mass star forming hub-filament system
- Emergence of high-mass stars in complex fiber networks (EMERGE) V. From filaments to spheroids: the origin of the hub-filament systems
- Gravity or turbulence? VII. The Schmidt-Kennicutt law, the star formation efficiency, and the mass density of clusters from gravitational collapse rather than turbulent support
- Evidence for the gravity-driven and magnetically-regularized gas flows feeding the massive protostellar cluster in Cepheus A