Radiative Properties of Reconnection-Powered Minijets in Blazars
Krzysztof Nalewajko, Dimitrios Giannios, Mitchell C. Begelman, Dmitri, A. Uzdensky, Marek Sikora

TL;DR
This paper models emission from magnetic reconnection-driven minijets in blazar jets to explain rapid variability and TeV emissions, emphasizing the importance of jet magnetization and minijet interactions.
Contribution
It introduces a detailed numerical model of minijet emission considering radiative effects and interactions, advancing understanding of blazar variability and high-energy emissions.
Findings
Models require high jet magnetization to match observations.
Interactions between oppositely-oriented minijets are crucial for TeV dominance.
Effective minijet Lorentz factors must exceed 50.
Abstract
We construct a numerical model of emission from minijets, localized flows driven by magnetic reconnection inside Poynting-flux-dominated jets proposed to explain the ultrafast variability of blazars. The geometrical structure of the model consists of two wedge-like regions of relativistically flowing gas, separated by a stationary shock. The dynamics is based on solutions of relativistic magnetic reconnection with a guide field from Lyubarsky (2005). Electron distributions in each region are chosen to the match the pressure and density of the local plasma. Synchrotron emission from both regions is used to calculate Compton scattering, Compton drag and photon-photon opacity effects, with exact treatment of anisotropy and the Klein-Nishina regime. Radiative effects on plasma are taken into account, including the dependence of pressure on electron radiative losses and adiabatic heating of…
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