Evolution of the angular momentum during gravitational fragmentation of molecular clouds
arXiv:2106.10381 · doi:10.3847/1538-4357/ac3915
Abstract
We investigate the origin of the observed scaling between the specific angular momentum and the radius of molecular clouds (MCs) and their their substructures, and of the observed near independence of , the ratio of rotational to gravitational energy, from . To this end, we measure the angular momentum (AM) of sets of particles in an SPH simulation of the formation, collapse and fragmentation of giant MCs. The sets of SPH particles are defined either as ``clumps'' (connected particle sets), or as lagrangian sets that conform a connected clump only at a certain time $\tdef$. We find that: {\it i)} Clumps evolve along the observed \jR\ relation at all times, {\it ii)} Lagrangian particle sets evolve along the observed relation when the volume containing them also contains a large number of other ``intruder'' particles. Otherwise, they evolve with cst. {\it iii)} Tracking lagrangian sets to the future, we find that a subset of the SPH particles participates in the collapse, while another disperses away. {\it iv)} Noting that, under AM conservation, increases during contraction, we suggest that its near independence of radius may arise from the competition between this increase and an increase in the AM exchange rate at higher rotational energy density gradient. {\it v)} We suggest that, if MCs are globally dominated by gravity, the observed \jR\ relation arises because the observational selection of its dense structures amounts to selecting the fragments that have lost AM via Reynolds stresses from their neighbors.
20 pages, 15 figures, submitted to ApJ, comments welcome
References in corpus (14)
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- The Critical Density and the Effective Excitation Density of Commonly Observed Molecular Dense Gas Tracers
- 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
- On the Structure of the Orion A Cloud and the Formation of the Orion Nebula Cluster
- The Power Spectrum of Supersonic Turbulence in Perseus
- Star Formation in Self-Gravitating Turbulent Fluids
- OVRO N2H+ Observations of Class 0 Protostars: Constraints on the Formation of Binary Stars
- Massive 70 micron quiet clumps II: non-thermal motions driven by gravity in massive star formation?
- Energy budget of forming clumps in numerical simulations of collapsing clouds
- Measuring Turbulence with Young Stars in the Orion Complex
- Turbulence in a self-gravitating molecular cloud core
- Rotation of Two Micron All Sky Survey Clumps in Molecular Clouds
Cited by in corpus (3)
- Evolution of the Angular Momentum of Molecular Cloud Cores Formed from Filament Fragmentation
- Alignment of dense molecular core morphology and velocity gradients with ambient magnetic fields
- Star-forming environments in smoothed particle magnetohydrodynamics simulations I: Clump extraction and properties