Making Fanaroff-Riley I radio sources. Numerical Hydrodynamic 3D Simulations of Low Power Jets
arXiv:1609.02497 · doi:10.1051/0004-6361/201629375
Abstract
Extragalactic radio sources have been classified into two classes, Fanaroff-Riley I and II, which differ in morphology and radio power. Strongly emitting sources belong to the edge-brightened FR II class, and weakly emitting sources to the edge-darkened FR I class. The origin of this dichotomy is not yet fully understood. Numerical simulations are successful in generating FR II morphologies, but they fail to reproduce the diffuse structure of FR Is. By means of hydro-dynamical 3D simulations of supersonic jets, we investigate how the displayed morphologies depend on the jet parameters. Bow shocks and Mach disks at the jet head, which are probably responsible for the hot spots in the FR II sources, disappear for a jet kinetic power L_kin < 10^43 erg/s. This threshold compares favorably with the luminosity at which the FR I/FR II transition is observed. The problem is addressed by numerical means carrying out 3D HD simulations of supersonic jets that propagate in a non-homogeneous medium with the ambient temperature that increases with distance from the jet origin, which maintains constant pressure. The jet energy in the lower power sources, instead of being deposited at the terminal shock, is gradually dissipated by the turbulence. The jets spread out while propagating, and they smoothly decelerate while mixing with the ambient medium and produce the plumes characteristic of FR I objects. Three-dimensionality is an essential ingredient to explore the FR I evolution because the properties of turbulence in two and three dimensions are very different, since there is no energy cascade to small scales in two dimensions, and two-dimensional simulations with the same parameters lead to FRII-like behavior.
11 pages, 12 figures, to appear on A&A
References in corpus (11)
- PLUTO: a Numerical Code for Computational Astrophysics
- Radio sources in the 6dFGS: Local luminosity functions at 1.4 GHz for star-forming galaxies and radio-loud AGN
- A numerical simulation of the evolution and fate of a FRI jet. The case of 3C 31
- A pilot study of the radio-emitting AGN population: the emerging new class of FR0 radio-galaxies
- The accretion mechanism in low-power radio galaxies
- Numerical modelling of the lobes of radio galaxies in cluster environments II: Magnetic field configuration and observability
- Formation of dynamical structures in relativistic jets: the FRI case
- The influence of AGN nuclear parameters on the FRI/FRII dichotomy
- Scaling Relations and X-ray Properties of Moderate-Luminosity Galaxy Clusters from 0.3 < z < 0.6 with XMM-Newton
- Jet-Intracluster Medium interaction in Hydra A. I Estimates of jet velocity from inner knots
- Linear and nonlinear evolution of current-carrying highly magnetized jets
Cited by in corpus (10)
- FR0CAT: a FIRST catalog of FR0 radio galaxies
- Simulating the dynamics and non-thermal emission of relativistic magnetised jets I. Dynamics
- RAiSE II: resolved spectral evolution in radio AGN
- WATCAT: a tale of wide-angle tailed radio galaxies
- Making Faranoff-Riley I radio sources II. The effects of jet magnetization
- Narrow head-tail radio galaxies at very high resolution
- Triggering mixing and deceleration in FRI jets: a solution
- The different flavors of extragalactic jets: the role of relativistic flow deceleration
- The LOFAR view of NGC 3998, a sputtering AGN
- Using synchrotron emission modelling of relativistic hydrodynamic jet simulations to study the FR I/FR II dichotomy of Active Galactic nuclei radio jets