The impact of magnetic fields on the chemical evolution of the supernova-driven ISM
arXiv:1611.00585 · doi:10.1093/mnras/stw3071
Abstract
We present three-dimensional magneto-hydrodynamical simulations of the self-gravitating interstellar medium (ISM) in a periodic (256 pc) box with a mean number density of 0.5 cm. At a fixed supernova rate we investigate the multi-phase ISM structure, H molecule formation and density-magnetic field scaling for varying initial magnetic field strengths (0, , 0.3, 3 G). All magnetic runs saturate at mass weighted field strengths of 1 3 G but the ISM structure is notably different. With increasing initial field strengths (from to 3 G) the simulations develop an ISM with a more homogeneous density and temperature structure, with increasing mass (from 5% to 85%) and volume filling fractions (from 4% to 85%) of warm (300 K T 8000 K) gas, with decreasing volume filling fractions (VFF) from 35% to 12% of hot gas (T K) and with a decreasing H mass fraction (from 70% to 1%). Meanwhile the mass fraction of gas in which the magnetic pressure dominates over the thermal pressure increases by a factor of 10, from 0.07 for an initial field of G to 0.7 for a 3 G initial field. In all but the simulations with the highest initial field strength self-gravity promotes the formation of dense gas and H, but does not change any other trends. We conclude that magnetic fields have a significant impact on the multi-phase, chemical and thermal structure of the ISM and discuss potential implications and limitations of the model.
submitted
References in corpus (30)
- Theory of Star Formation
- Momentum Injection by Supernovae in the Interstellar Medium
- Simulating the formation of molecular clouds. I. Slow formation by gravitational collapse from static initial conditions
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
- Simulating the formation of molecular clouds. II. Rapid formation from turbulent initial conditions
- The Dynamics of Radiation Pressure-Dominated HII Regions
- From the warm magnetized atomic medium to molecular clouds
- Modeling jet and outflow feedback during star cluster formation
- Radiative torque alignment: Essential Physical Processes
- A robust numerical scheme for highly compressible magnetohydrodynamics: Nonlinear stability, implementation and tests
- Dependence of Interstellar Turbulent Pressure on Supernova Rate
- Vertical structure of a supernova-driven turbulent magnetized ISM
- Modelling the supernova-driven ISM in different environments
- The effect of magnetic fields on star cluster formation
- Rapid Molecular Cloud and Star Formation: Mechanisms and Movies
- Comparing Numerical Methods for Isothermal Magnetized Supersonic Turbulence
- Simulations of magnetized multiphase galactic disk regulated by supernovae explosions
- The Generation and Dissipation of Interstellar Turbulence - Results from Large Scale High Resolution Simulations
- Formation of Magnetized Prestellar Cores with Ambipolar Diffusion and Turbulence
- The Turbulent Dynamo in Highly Compressible Supersonic Plasmas
- On the radiation driven alignment of dust grains: Detection of the polarization hole in a starless core
- Winds, Clumps, and Interacting Cosmic Rays in M82
- The supernova-regulated ISM. II. The mean magnetic field
- Three-dimensional Simulation of Magnetized Cloud Fragmentation Induced by Nonlinear Flows and Ambipolar Diffusion
- CO-dark gas and molecular filaments in Milky Way-type galaxies - II: The temperature distribution of the gas
- The impact of thermodynamics on gravitational collapse: filament formation and magnetic field amplification
- Simulating Supersonic Turbulence in Magnetized Molecular Clouds
- Remarks on Rapid vs. Slow Star Formation
- Accretion and Diffusion Timescales in Sheets and Filaments
- The Large-Scale Magnetic Field Structure of Our Galaxy: Efficiently Deduced from Pulsar Rotation Measures
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- SILCC VI -- Multi-phase ISM structure, stellar clustering, and outflows with supernovae, stellar winds, ionising radiation and cosmic rays
- Physical Processes in Star Formation
- Alignment of the magnetic field in star forming regions and why it might be difficult to observe
- Rectangular core-collapse supernova remnants: application to Puppis A
- Unravelling the structure of magnetised molecular clouds with SILCC-Zoom: sheets, filaments and fragmentation
- Magnetic fields do not suppress global star formation in low metallicity dwarf galaxies
- CO enhancement by magnetohydrodynamic waves; Striations in the Polaris Flare
- Time evolution of the galactic relation: the impact of the magnetic field morphology
- Rotation measure and synchrotron emission signatures in simulations of magnetized galactic discs