Interstellar Turbulence Driving by Galactic Spiral Shocks
arXiv:astro-ph/0608161 · doi:10.1086/508160
Abstract
Spiral shocks are potentially a major source of turbulence in the interstellar medium. To address this problem quantitatively, we use numerical simulations to investigate gas flow across spiral arms in vertically stratified, self-gravitating, magnetized models of galactic disks. Our models are isothermal, quasi-axisymmetric, and local in the quasi-radial direction while global in the vertical direction. We find that a stellar spiral potential perturbation promptly induces a spiral shock in the gas flow. For vertically stratified gas disks, the shock front in the radial-vertical plane is in general curved, and never achieves a steady state. This behavior is in sharp contrast to spiral shocks in two-dimensional (thin) disks, which are generally stationary. The non-steady motions in our models include large-amplitude quasi-radial flapping of the shock front. This flapping feeds random gas motions on the scale of the vertical disk thickness, which then cascades to smaller scales. The induced gas velocity dispersion in quasi-steady state exceeds the sonic value for a range of shock strengths, suggesting that spiral shocks are indeed an important generator of turbulence in disk galaxies.
4 pages, 3 figures, Accepted for publication in ApJL
References in corpus (1)
Cited by in corpus (35)
- Theory of Star Formation
- Magnetic Fields in Spiral Galaxies
- Maximally Star-Forming Galactic Disks I. Starburst Regulation Via Feedback-Driven Turbulence
- What is Driving the HI Velocity Dispersion?
- Three Dimensional Hydrodynamic Simulations of Multiphase Galactic Disks with Star Formation Feedback: I. Regulation of Star Formation Rates
- Regulation of Star Formation Rates in Multiphase Galactic Disks: Numerical Tests of the Thermal/Dynamical Equilibrium Model
- Interplay between Stellar Spirals and the ISM in Galactic Disks
- The Blueshifting and Baldwin effects for the [OIII] 5007 Emission Line in Type 1 Active Galactic Nuclei
- The Virial Balance of Clumps and Cores in Molecular Clouds
- A Model for the Onset of Self-gravitation and Star Formation in Molecular Gas Governed by Galactic Forces: I. Cloud-scale Gas Motions
- Gravitational Runaway and Turbulence Driving in Star-Gas Galactic Disks
- Simulations of spiral galaxies with an active potential: molecular cloud formation and gas dynamics
- New constraints on modelling the random magnetic field of the MW
- Galactic Spiral Shocks with Thermal Instability
- Nature of the Wiggle Instability of Galactic Spiral Shocks
- Structure Formation in Gas-Rich Galactic Discs with Finite Thickness: From Discs to Rings
- Magnetic fields and the dynamics of spiral galaxies
- Dust polarization and ISM turbulence
- Star Formation in Nuclear Rings of Barred Galaxies
- A Study of starless dark cloud LDN 1570: Distance, Dust properties and Magnetic field geometry
- Shrinking Galaxy Disks with Fountain-Driven Accretion from the Halo
- On the origin of LS 5039 and PSR J1825-1446
- Galactic Spiral Shocks with Thermal Instability in Vertically Stratified Galactic Disks
- Cloud Properties and Correlations with Star Formation in Numerical Simulations of the Three-Phase ISM
- The onset of large scale turbulence in the interstellar medium of spiral galaxies
- Magnetic field evolution and reversals in spiral galaxies
- The Complex Large-scale Magnetic Fields in the First Galactic Quadrant as Revealed by the Faraday Depth Profile Disparity
- Star Formation in Disks: Spiral Arms, Turbulence, and Triggering Mechanisms
- Dense Regions in Supersonic Isothermal Turbulence
- The First Billion Years Project: Finding Infant Globular Clusters at z=6
- Role of Electon Excitation and Nature of Molecular Gas in Cluster Central Elliptical Galaxies
- The filamentary structures in the CO emission toward the Milky Way disk
- A Search for correlations between turbulence and star formation in THINGS galaxies
- Star Formation and Gas Dynamics in Galactic Disks: Physical Processes and Numerical Models
- Linking the Internal Properties of Infant Globular Clusters to their Formation Environments