Abstract
We investigate giant molecular cloud collisions and their ability to induce gravitational instability and thus star formation. This mechanism may be a major driver of star formation activity in galactic disks. We carry out a series of 3D, magnetohydrodynamics (MHD), adaptive mesh refinement simulations to study how cloud collisions trigger formation of dense filaments and clumps. Heating and cooling functions are implemented based on photo-dissociation region models that span the atomic-to-molecular transition and can return detailed diagnostic information. The clouds are initialized with supersonic turbulence and a range of magnetic field strengths and orientations. Collisions at various velocities and impact parameters are investigated. Comparing and contrasting colliding and non-colliding cases, we characterize morphologies of dense gas, magnetic field structure, cloud kinematic signatures, and cloud dynamics. We present key observational diagnostics of cloud collisions, especially: relative orientations between magnetic fields and density structures, like filaments; 13 CO( J = 2-1), 13 CO( J = 3-2), and 12 CO( J = 8-7) integrated intensity maps and spectra; and cloud virial parameters. We compare these results to observed Galactic clouds.
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CITATION STYLE
Wu, B., Tan, J. C., Nakamura, F., Loo, S. V., Christie, D., & Collins, D. (2017). GMC Collisions as Triggers of Star Formation. II. 3D Turbulent, Magnetized Simulations. The Astrophysical Journal, 835(2), 137. https://doi.org/10.3847/1538-4357/835/2/137
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