Supersonic Cloud Collision - I
arXiv:0810.5011 · doi:10.1051/0004-6361/200911748
Abstract
It has long been suggested that shocks might play an important role in altering the form of the interstellar medium (ISM). Shocks enhance gas density and sufficiently dense regions may become self gravitating. Potential star forming clouds within larger molecular clouds, move randomly at supersonic speeds. Depending on the precollision velocity, colliding molecular clouds produce a slab that is either shock compressed or pressure confined. In a sequel of two papers (I & II), we simulate molecular cloud collision and investigate the dynamical evolution of such slabs. Shocked slabs are susceptible to hydrodynamic instabilities and in the present paper (I) we study the effect of strong shear between slab layers on the dynamic evolution of a shock compressed gas slab. Both, head-on and off-centre cloud collisions have been examined in this work. We include self gravity in all our simulations. Simulations presented here, are performed using the smoothed particle hydrodynamics (SPH) numerical scheme. Individual, pre-collision clouds are modelled as pressure confined Bonnor-Ebert spheres. However, in the interest of brevity the thermodynamic details of the problem are simplified and the gas temperature is simply evolved by a barytropic equation of state. Obviously, the gas, to some extent suffers from thermal inertial effects. However, we note that the dynamical timescale is much smaller than the local sound crossing time so that such effects should have minimum influence.
16 pages, 13 figures, 1 table; A&A accepted Typographical errors have been attended to. The resolution of the figures has been deliberately lowered in order to accommodate them all within the prescribed size limits
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- FOREST Unbiased Galactic plane Imaging survey with the Nobeyama 45-m telescope (FUGIN) 2: Possible evidence for formation of NGC~6618 cluster in M17 by cloud-cloud collision
- GMC Collisions as Triggers of Star Formation. I. Parameter Space Exploration with 2D Simulations
- Globular Cluster Formation from Colliding Substructure
- GMC Collisions as Triggers of Star Formation. VII. The Effect of Magnetic Field Strength on Star Formation
- Magnetic field geometry of an unusual cometary cloud Gal 110-13
- Detailed CO ( = 1--0, 2--1 and 3--2) observations toward an H{\sc ii} region RCW~32 in the Vela Molecular Ridge
- Supersonic Cloud Collision-II
- Coupling local to global star formation in spiral galaxies: the effect of differential rotation
- Multiwavelength analysis of the X-ray spur and southeast of the Large Magellanic Cloud
- FOREST unbiased Galactic plane imaging survey with the Nobeyama 45 m telescope (FUGIN): Possible evidence of cloud-cloud collisions triggering high-mass star formation in the giant molecular cloud M16 (Eagle Nebula)
- On the star-forming ability of Molecular Clouds
- Stability of filaments in star-forming clouds and the formation of prestellar cores in them
- Effective viscosity from cloud-cloud collisions in three-dimensional global SPH simulations
- On the evolution of irradiated turbulent clouds: A comparative study between modes of triggered star-formation
- Formation of accretion centers in simulations of colliding uniform density H cores
- On the propensity of the formation of massive clumps via fragmentation of driven shells
- On the interaction of a thin, supersonic shell with a molecular cloud
- Simulations of un-equal binary collisions embedded in a turbulent gas cloud far away of a massive gravitational center