Identifying changing jets through their radio variability
arXiv:2108.10892 · doi:10.1051/0004-6361/202141053
Abstract
Supermassive black holes launch highly relativistic jets with velocities reaching Lorentz factors as high as . How the jets accelerate to such high velocities and where along the jet do they reach terminal velocity are open questions that are tightly linked to their structure, launching and dissipation mechanisms. Changes in the beaming factor along the jets could potentially reveal jet acceleration, deceleration, or bending. We aim to (1) quantify the relativistic effects in multiple radio frequencies and (2) study possible jet velocity--viewing angle variations at parsec scales. We used the state-of-the-art code Magnetron to model light curves from the University of Michigan Radio Observatory and the Metsähovi Radio Observatory's monitoring programs in five frequencies covering about 25 years of observations in the 4.8-37~GHz range for 61 sources. We supplement our data set with high-frequency radio observations in the 100-340~GHz range from ALMA, CARMA, and SMA. For each frequency we estimate the Doppler factor which we use to quantify possible changes in the relativistic effects along the jets. The majority of our sources do not show any statistically significant difference in their Doppler factor across frequencies. This is consistent with constant velocity in a conical jet, as expected at parsec scales. However, our analysis reveals 17 sources where relativistic beaming changes as a function of frequency. In the majority of cases the Doppler factor increases towards lower frequencies. Only 1253-053 shows the opposite behavior. By exploring their jet properties we find that the jet of 0420-014 is likely bent across the 4.8-340~GHz range. For 0212+735 the jet is likely parabolic, and still accelerating in the 4.8-37~GHz range. We discuss possible interpretations for the trends found in the remaining sources.
15 pages, 5 figure, 3 Tables, accepted for publication in A&A
References in corpus (24)
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
- Doppler factors, Lorentz factors and viewing angles for quasars, BL Lacertae objects and radio galaxies
- Magnetic acceleration of relativistic AGN jets
- Kinematics of Parsec-Scale Jets of Gamma-Ray Blazars at 43~GHz within the VLBA-BU-BLAZAR Program
- CMB-S4 Science Book, First Edition
- MOJAVE: XV. VLBA 15 GHz Total Intensity and Polarization Maps of 437 Parsec-Scale AGN Jets From 1996-2017
- Kinematics of the jet in M87 on scales of 100 -- 1000 Schwarzschild radii
- MOJAVE. XVII. Jet Kinematics and Parent Population Properties of Relativistically Beamed Radio-Loud Blazars
- Rapid variability in TeV blazars: the case of PKS 2155-304
- MOJAVE: Monitoring of Jets in Active Galactic Nuclei with VLBA Experiments. XI. Spectral distributions
- MOJAVE XII: Acceleration and Collimation of Blazar Jets on Parsec Scales
- Stochastic Modeling of the Fermi/LAT Gamma-ray Blazar Variability
- F-GAMMA: Variability Doppler factors of blazars from multiwavelength monitoring
- Jet collimation in NGC 315 and other nearby AGN
- Jet collimation and acceleration in the giant radio galaxy NGC 315
- Proton Synchrotron -rays and the Energy Crisis in Blazars
- Bimodal radio variability in OVRO-40m-monitored blazars
- Constraining the Physical Conditions in the Jets of Gamma-Ray Flaring Blazars using Centimeter-Band Polarimetry and Radiative Transfer Simulations. I. Data and Models for 0420-014, OJ 287, and 1156+295
- Radiation Signatures From Striped Blazar Jet
- Physical parameters of active galactic nuclei derived from properties of jet geometry transition region
- Population statistics of beamed sources. I: A new model for blazars
- Optical polarization variations in the blazar PKS 1749+096
- The F-GAMMA program: multi-wavelength AGN studies in the Fermi-GST era
- Detecting the Elusive Blazar Counter-Jets