Magnetic Field Amplification and Flat Spectrum Radio Quasars
arXiv:1404.2193 · doi:10.1093/mnras/stu713
Abstract
We perform time-dependent, spatially-resolved simulations of blazar emission to evaluate several flaring scenarios related to magnetic-field amplification and enhanced particle acceleration. The code explicitly accounts for light-travel-time effects and is applied to flares observed in the flat spectrum radio quasar (FSRQ) PKS 0208-512, which show optical/γ-ray correlation at some times, but orphan optical flares at other times. Changes in both the magnetic field and the particle acceleration efficiency are explored as causes of flares. Generally, external Compton emission appears to describe the available data better than a synchrotron self-Compton scenario, and in particular orphan optical flares are difficult to produce in the SSC framework. X-ray soft-excesses, γ-ray spectral hardening, and the detections at very high energies of certain FSRQs during flares find natural explanations in the EC scenario with particle acceleration change. Likewise, optical flares with/without γ-ray counterparts can be explained by different allocations of energy between the magnetization and particle acceleration, which may be related to the orientation of the magnetic field relative to the jet flow. We also calculate the degree of linear polarization and polarization angle as a function of time for a jet with helical magnetic field. Tightening of the magnetic helix immediately downstream of the jet perturbations, where flares occur, can be sufficient to explain the increases in the degree of polarization and a rotation by >= 180 degree of the observed polarization angle, if light-travel-time effects are properly considered.
12 pages, 9 figures. Accepted for publication in MNRAS
References in corpus (8)
- Probing the Inner Jet of the Quasar PKS 1510-089 with Multi-waveband Monitoring during Strong Gamma-ray Activity
- Very-High-Energy Gamma Rays from a Distant Quasar: How Transparent Is the Universe?
- MAGIC discovery of VHE Emission from the FSRQ PKS 1222+21
- CGRaBS: An All-Sky Survey of Gamma-Ray Blazar Candidates
- Observational constraints on energetic particle diffusion in young SNRs: amplified magnetic field and maximum energy
- Results of WEBT, VLBA and RXTE monitoring of 3C 279 during 2006-2007
- Stochastic particle acceleration and synchrotron self--Compton radiation in TeV blazars
- Three dimensional magnetic field structure of six parsec-scale active galactic nuclei jets
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- Particle diffusion and localized acceleration in inhomogeneous AGN jets - Part I: Steady-state spectra
- First-Principle-Integrated Study of Blazar Synchrotron Radiation and Polarization Signatures from Magnetic Turbulence
- A Steady-State Spectral Model For Electron Acceleration And Cooling In Blazar Jets: Application To 3C 279
- Inverse Compton light curves of blazars under non-linear, time-dependent synchrotron-self Compton cooling