Energy Dissipation in Interstellar Cloud Collisions
arXiv:astro-ph/9702143 · doi:10.1086/304401
Abstract
We present a study of the kinetic energy dissipation in interstellar cloud collisions. The main aim is to understand the dependence of the elasticity (defined as the ratio of the final to the initial kinetic energy of the clouds) on the velocity and mass ratio of the colliding clouds, magnetic field strength, and gas metallicity for head-on collisions. The problem has been studied both analytically and via numerical simulations. We have derived handy analytical relationships that well approximate the analogous numerical results. The main findings of this work are: (i) the kinetic energy dissipation in cloud collisions is minimum (i.e. the collision elasticity is maximum) for a cloud relative velocity ; (ii) the above minimum value is proportional , where is the metallicity and is the cloud size: the larger is the more dissipative (i.e. inelastic) the collision will be; (iii) in general, we find that the energy dissipation decreases when the magnetic field strength, and mass ratio of the clouds are increased and the metallicity is decreased, respectively. We briefly discuss the relevance of this study to the global structure of the interstellar medium and to galaxy formation and evolution.
16 pages, aasms LaTeX, 7 figures. ApJ, accepted
Cited by in corpus (13)
- Dust Formation in Primordial Type II Supernovae
- The Role of Stellar Feedback and Dark Matter in the Evolution of Dwarf Galaxies
- Metal Cooling in Simulations of Cosmic Structure Formation
- Isolating signatures of major cloud-cloud collisions II: The lifetimes of broad bridge features
- The Fate of the First Galaxies. III. Properties of Primordial Dwarf Galaxies and their Impact on the Intergalactic Medium
- Galaxy Formation and the Kinematics of Damped Lyman Alpha Systems
- Hydrodynamics of Cloud Collisions in 2D: The Fate of Clouds in a Multi-phase Medium
- Magnetohydrodynamics of Cloud Collisions in a Multi-phase Interstellar Medium
- Magnetic field geometry of an unusual cometary cloud Gal 110-13
- ALMA reveals a cloud-cloud collision that triggers star formation in N66N of the Small Magellanic Cloud
- Coupling local to global star formation in spiral galaxies: the effect of differential rotation
- What regulates the velocity distribution of interstellar clouds?
- Probing ISM Models with H-alpha observations