4.7 Article

ExHaLe-jet: an extended hadro-leptonic jet model for blazars - I. Code description and initial results

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stac754

关键词

radiation mechanisms: non-thermal; relativistic processes; galaxies: active; BL Lacertae objects: general; galaxies: jets

资金

  1. LUTH, Observatoire de Paris
  2. Austrian Science Fund (FWF) [I 4144-N27]

向作者/读者索取更多资源

The processes operating in blazar jets are still not fully understood. In this paper, a new extended jet code is presented, which considers the processes of relativistic protons and electrons simultaneously and derives the particle evolution and photon spectra computationally efficiently. It is found that external photon fields play a crucial role in particle-photon interactions, governing the resulting photon and neutrino spectra.
The processes operating in blazar jets are still an open question. Modelling the radiation emanating from an extended part of the jet allows one to capture these processes on all scales. Kinetic codes solving the Fokker-Planck equation along the jet flow are well suited to this task, as they can efficiently derive the radiation and particle spectra without the need for computationally demanding plasma physical simulations. Here, we present a new extended hadro-leptonic jet code - ExHaLe-jet- which considers simultaneously the processes of relativistic protons and electrons. Within a pre-set geometry and bulk flow, the particle evolution is derived self-consistently. Highly relativistic secondary electrons (and positrons) are created through gamma-gamma pair production, Bethe-Heitler pair production, and pion/muon decay. These secondaries are entrained in the jet flow decreasing the ratio of protons to electrons with distance from the jet base. For particle-photon interactions, we consider all internal and many external photon fields, such as the accretion disc, broad-line region, and the dusty torus. The external fields turn out to be the most important source for particle-photon interactions governing the resulting photon and neutrino spectra. In this paper, we present the code and an initial parameter study, while in follow-up works we present extensions of the code and more specific applications.

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