论文标题

与发射线云的电子束相互作用

Electron-beam interaction with emission-line clouds in blazars

论文作者

Wendel, Christoph, González, Josefa Becerra, Paneque, David, Mannheim, Karl

论文摘要

上下文:从积聚黑洞的磁层真空间隙逸出的电子旋律束与周围气体云的重组线光子相互作用。逆孔子散射和随后的成对产生启动不饱和电磁级联反应,表现出特征性的光谱能分布。目的:通过对氢和氦重组线光子的相互作用进行建模,我们试图描述Blazar Jets宽发射线区域中梁驱动级联反应的光谱特征。方法:采用电子(正值)和光子(包括逃生术语)的耦合动力学方程,我们从数值上获得其稳态分布以及逃逸的光子光谱。结果:我们发现,由梁相互作用产生的级联发射可以在TEV能量下产生狭窄的光谱特征。这种间歇性功能的迹象(在标准的射流场景中都没有解释,在$ \ \ \,4 \,σ$的置信水平上以$ \ $ \ $ \ 3 $ 3 tev为单位的置信度,在Blazar MRK 501的频谱中约为$ \ 3 tev。对于带有$ \ $ \ $ \ $ 0.1%的Blandford-Znajek发光度的多型TEV梁电子(正上音),这些亮度与重组线相互作用,来自重新处理的$ \ $ \ $ 1%的相似积聚亮度的气云相互作用。

Context: An electron-positron beam escaping from the magnetospheric vacuum gap of an accreting black hole interacts with recombination-line photons from surrounding gas clouds. Inverse-Compton scattering and subsequent pair production initiate unsaturated electromagnetic cascades exhibiting a characteristic spectral energy distribution. Aims: By modelling the interactions of beam electrons (positrons) with hydrogen and helium recombination-line photons, we seek to describe the spectral signature of beam-driven cascades in the broad emission-line region of blazar jets. Methods: Employing coupled kinetic equations for electrons (positrons) and photons including an escape term, we numerically obtain their steady-state distributions, and the escaping photon spectrum. Results: We find that cascade emission resulting from beam interactions can produce a narrow spectral feature at TeV energies. Indications of such an intermittent feature, which defies an explanation in the standard shock-in-jet scenario, have been found at $\approx\,4\,σ$ confidence level at an energy of $\approx$ 3 TeV in the spectrum of the blazar Mrk 501. Conclusions: The energetic requirements for explaining the intermittent 3 TeV bump with the beam-interaction model are plausible: Gap discharges that lead to multi-TeV beam electrons (positrons) carrying $\approx$ 0.1 % of the Blandford-Znajek luminosity, which interact with recombination-line photons from gas clouds that reprocess $\approx$ 1 % of the similar accretion luminosity are required.

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