On the bar formation mechanism in galaxies with cuspy bulges
arXiv:1601.06115 · doi:10.1093/mnras/stw1907
Abstract
We show by numerical simulations that a purely stellar dynamical model composed of an exponential disc, a cuspy bulge, and an NFW halo with parameters relevant to the Milky Way Galaxy is subject to bar formation. Taking into account the finite disc thickness, the bar formation can be explained by the usual bar instability, in spite of the presence of an inner Lindblad resonance, that is believed to damp any global modes. The effect of replacing the live halo and bulge by a fixed external axisymmetric potential (rigid models) is studied. It is shown that while the e-folding time of bar instability increases significantly (from 250 to 500 Myr), the bar pattern speed remains almost the same. For the latter, our average value of 55 km/s/kpc agrees with the assumption that the Hercules stream in the solar neighbourhood is an imprint of the bar--disc interaction at the outer Lindblad resonance of the bar. Vertical averaging of the radial force in the central disc region comparable to the characteristic scale length allows us to reproduce the bar pattern speed and the growth rate of the rigid models, using normal mode analysis of linear perturbation theory in a razor thin disc. The strong increase of the e-folding time with decreasing disc mass predicted by the mode analysis suggests that bars in galaxies similar to the Milky Way have formed only recently.
13 pages, 15 figures, submitted to MNRAS Dec 2015, accepted Jul 29, 2016
References in corpus (6)
- Dynamical friction of massive objects in galactic centres
- The incorrect rotation curve of the Milky Way
- Bar instability in disk-halo systems
- Bisymmetric normal modes in soft-centred and realistic galactic discs
- High resolution in z-direction: The simulation of disc-bulge-halo galaxies using the particle-mesh code SUPERBOX
- Bonsai: A GPU Tree-Code
Cited by in corpus (15)
- Bar-driven evolution and quenching of spiral galaxies in cosmological simulations
- Bimodality of [α/Fe]-[Fe/H] distributions is a natural outcome of dissipative collapse and disc growth in Milky Way-type galaxies
- The Formation of S0 Galaxies with Counter-Rotating Neutral and Molecular Hydrogen
- Effects of galaxy--satellite interactions on bar formation
- The Effect of Bulge Mass on Bar Pattern Speed in Disk Galaxies
- Mass Distribution and Bar Formation in Growing Disk Galaxy Models
- Effects of the Central Mass Concentration on Bar Formation in Disk Galaxies
- Rapid formation of black holes in galaxies: a self-limiting growth mechanism
- Modeling of Spiral Structure in a Multi-Component Milky~Way-Like Galaxy
- Addressing via N-body simulations the distribution of the satellite tidal debris in the Milky Way environment
- Bar instability and formation timescale across Toomre's parameter and central mass concentration: slow bar formation or true stability
- Dynamical analysis of Maclaurin disk with velocity dispersion and its influence on bar formation
- Effect of Inner Lindblad Resonance on Spiral Density Waves Propagation in Disc Galaxies: Reflection over Absorption
- The Lynden-Bell bar formation mechanism in simple and realistic galactic models
- Simulation of the loss-cone instability in spherical systems. I. Dominating harmonic potential