Flow-Driven Cloud Formation and Fragmentation: Results From Eulerian and Lagrangian Simulations
arXiv:1103.2313 · doi:10.1111/j.1365-2966.2011.18694.x
Abstract
The fragmentation of shocked flows in a thermally bistable medium provides a natural mechanism to form turbulent cold clouds as precursors to molecular clouds. Yet because of the large density and temperature differences and the range of dynamical scales involved, following this process with numerical simulations is challenging. We compare two-dimensional simulations of flow-driven cloud formation without self-gravity, using the Lagrangian Smoothed Particle Hydrodynamics (SPH) code VINE and the Eulerian grid code Proteus. Results are qualitatively similar for both methods, yet the variable spatial resolution of the SPH method leads to smaller fragments and thinner filaments, rendering the overall morphologies different. Thermal and hydro-dynamical instabilities lead to rapid cooling and fragmentation into cold clumps with temperatures below 300K. For clumps more massive than 1 Msun/pc, the clump mass function has an average slope of -0.8. The internal velocity dispersion of the clumps is nearly an order of magnitude smaller than their relative motion, rendering it subsonic with respect to the internal sound speed of the clumps, but supersonic as seen by an external observer. For the SPH simulations most of the cold gas resides at temperatures below 100K, while the grid-based models show an additional, substantial component between 100 and 300K. Independently of the numerical method our models confirm that converging flows of warm neutral gas fragment rapidly and form high-density, low-temperature clumps as possible seeds for star formation.
9 pages, 8 figures, MNRAS accepted
References in corpus (19)
- Modelling discontinuities and Kelvin-Helmholtz instabilities in SPH
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- The influence of gas on the structure of merger remnants
- From the warm magnetized atomic medium to molecular clouds
- The Birth of Molecular Clouds: Formation of Atomic Precursors in Colliding Flows
- Cooling, Gravity and Geometry: Flow-driven Massive Core Formation
- On the Structure of the Orion A Cloud and the Formation of the Orion Nebula Cluster
- Rapid Molecular Cloud and Star Formation: Mechanisms and Movies
- Six Myths on the Virial Theorem for Interstellar Clouds
- The formation of molecular clouds in spiral galaxies
- The ISM in spiral galaxies: can cooling in spiral shocks produce molecular clouds?
- iVINE - Ionization in the parallel tree/SPH code VINE: First results on the observed age-spread around O-stars
- Smoothed Particle Hydrodynamics simulations of expanding HII regions. I. Numerical methods and tests
- Fragmentation of Shocked Flows: Gravity, Turbulence and Cooling
- VINE -- A numerical code for simulating astrophysical systems using particles I: Description of the physics and the numerical methods
- Core Mass Function: The Role of Gravity
- Large-Scale Gravitational Instability and Star Formation in the Large Magellanic Cloud
- VINE -- A numerical code for simulating astrophysical systems using particles II: Implementation and performance characteristics
- Massive Quiescent Cores in Orion. -- II. Core Mass Function
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