Supersonic turbulence in 3D isothermal flow collision
arXiv:1401.0816 · doi:10.1051/0004-6361/201322482
Abstract
Colliding supersonic bulk flows shape observable properties and internal physics of various astrophysical objects, like O-star winds, molecular clouds, galactic sheets, binaries, or gamma-ray bursts. Using numerical simulations, we show that the bulk flows leave a clear imprint on the collision zone, its mean properties and the turbulence it naturally develops. Our model setup consists of 3D head-on colliding isothermal hydrodynamical flows with Mach numbers between 2 and 43. Simulation results are in line with expectations from self-similarity: root mean square Mach numbers (Mrms) scale linearly with upstream Mach numbers, mean densities remain limited to a few times the upstream density. The density PDF is not log-normal. The turbulence is inhomogeneous: weaker in the zone center than close to the confining shocks. It is anisotropic: while Mrms is generally supersonic, Mrms transverse to the upstream flow is always subsonic. We argue that uniform, isothermal, head-on colliding flows generally disfavor isotropic, supersonic turbulence. The anisotropy carries over to other quantities like the density variance - Mach number relation. Structure functions differ depending on whether they are computed along a line-of-sight perpendicular or parallel to the upstream flow. We suggest that such line-of-sight effects should be kept in mind when interpreting turbulence characteristics derived from observations.
20 pages, 14 figures, 4 tables, accepted by Astronomy and Astrophysics
References in corpus (24)
- Theory of Star Formation
- The Statistics of Supersonic Isothermal Turbulence
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- On the Density Distribution in Star-forming Interstellar Clouds
- Numerical simulations of compressively driven interstellar turbulence: I. Isothermal gas
- From the warm magnetized atomic medium to molecular clouds
- The Fractal Density Structure in Supersonic Isothermal Turbulence: Solenoidal versus Compressive Energy Injection
- The Birth of Molecular Clouds: Formation of Atomic Precursors in Colliding Flows
- Comparing Numerical Methods for Isothermal Magnetized Supersonic Turbulence
- The Generation and Dissipation of Interstellar Turbulence - Results from Large Scale High Resolution Simulations
- 3D simulations of RS Oph: from accretion to nova blast
- The turbulent destruction of clouds - I. A k-epsilon treatment of turbulence in 2D models of adiabatic shock-cloud interactions
- Spectral and Intermittency Properties of Relativistic Turbulence
- A Clumping Independent Diagnostic of Stellar Mass-loss Rates: Rapid Clump Destruction in Adiabatic Colliding Winds
- Supersonic turbulence in shock-bound interaction zones I: symmetric settings
- Internal shocks in relativistic outflows: collisions of magnetized shells
- Interstellar cloud structure: The statistics of centroid velocities
- The effect of turbulent intermittency on the deflagration to detonation transition in SN Ia explosions
- Delayed star formation in high-redshift stream-fed galaxies
- Circum-stellar medium around rotating massive stars at solar metallicity
- Scaling Laws and Intermittency in Highly Compressible Turbulence
- Density distributions of outflow driven turbulence
Cited by in corpus (10)
- Classification of Filament Formation Mechanisms in Magnetized Molecular Clouds
- The onset of large scale turbulence in the interstellar medium of spiral galaxies
- The Effect of Turbulence on Nebular Emission Line Ratios
- The Early Stage of Molecular Cloud Formation by Compression of Two-phase Atomic Gases
- Atomic Chemistry in Turbulent Astrophysical Media II: Effect of the Redshift Zero Metagalactic Background
- A well-balanced scheme for the simulation tool-kit A-MaZe: implementation, tests, and first applications to stellar structure
- On the origin of compressive turbulence in protoclumps in high redshift disks
- The interplay of the collisionless nonlinear thin-shell instability with the ion acoustic instability
- Accuracy requirements to test the applicability of the random cascade model to supersonic turbulence
- Effects of radiative losses on the relativistic jets of high-mass microquasars