Time-dependent simulations of emission from FSRQ PKS1510-089: multiwavelength variability of external Compton and SSC models
Xuhui Chen (1), Giovanni Fossati (1), Edison Liang (1), Markus, Boettcher (2), ((1) Rice University, (2) Ohio University)

TL;DR
This study models the multiwavelength variability of FSRQ PKS1510-089 using a time-dependent multizone simulation, highlighting the importance of external radiation fields and light travel effects in understanding emission mechanisms.
Contribution
It introduces a comprehensive time-dependent multizone Monte Carlo/Fokker-Planck model to analyze blazar emission, emphasizing the impact of external photon sources and source geometry.
Findings
External radiation spectrum significantly affects SED modeling.
Time-dependent models reveal differences in SED shape and variability.
Realistic source treatment is crucial for interpreting multiwavelength data.
Abstract
[abridged] We present results of modeling the SED and multiwavelength variability of the bright FSRQ PKS1510-089 with our time-dependent multizone Monte Carlo/Fokker-Planck code (Chen et al. 2001). As primary source of seed photons for inverse Compton scattering, we consider radiation from the broad line region (BLR), from the molecular torus, and the local synchrotron radiation (SSC). Different scenarios are assessed by comparing simulated light curves and SEDs with one of the best flares by PKS1510-089, in March 2009. The time-dependence of our code and its correct handling of light travel time effects allow us to fully take into account the effect of the finite size of the active region, and in turn to fully exploit the information carried by time resolved observed SEDs, increasingly available since the launch of Fermi. We confirm that the spectrum adopted for the external radiation…
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