Formation of gaseous arms in barred galaxies with dynamically important magnetic field : 3D MHD simulations
arXiv:0905.0845 · doi:10.1051/0004-6361/200911635
Abstract
We present results of three-dimensional nonlinear MHD simulations of a large-scale magnetic field and its evolution inside a barred galaxy with the back reaction of the magnetic field on the gas. The model does not consider the dynamo process. To compare our modeling results with observations, we construct maps of the high-frequency (Faraday-rotation-free) polarized radio emission on the basis of simulated magnetic fields. The model accounts for the effects of projection and the limited resolution of real observations. We performed 3D MHD numerical simulations of barred galaxies and polarization maps. The main result is that the modeled magnetic field configurations resemble maps of the polarized intensity observed in barred galaxies. They exhibit polarization vectors along the bar and arms forming coherent structures similar to the observed ones. In the paper, we also explain the previously unsolved issue of discrepancy between the velocity and magnetic field configurations in this type of galaxies. The dynamical influence of the bar causes gas to form spiral waves that travel outwards. Each gaseous spiral arm is accompanied by a magnetic counterpart, which separates and survives in the inter-arm region. Because of a strong compression, shear of non-axisymmetric bar flows and differential rotation, the total energy of modeled magnetic field grows constantly, while the azimuthal flux grows slightly until $0.05\Gyr$ and then saturates.
4 pages, 4 figures
References in corpus (1)
Cited by in corpus (6)
- Gaseous Structures in Barred Galaxies: Effects of the Bar Strength
- Two-Dimensional Magnetohydrodynamic Simulations of Barred Galaxies
- Simulating magnetic fields in the Antennae galaxies
- Global simulations of the magnetic field evolution under the influence of the cosmic-ray-driven dynamo
- Cosmic Magnetism in Centimeter and Meter Wavelength Radio Astronomy
- Mean fields and fluctuations in compressible magnetohydrodynamic flows