论文标题

使用CRBEAM代码建模非常高能量伽马射线的传播:与CRPROPA和ELMAG代码进行比较

Modelling the propagation of very-high-energy gamma rays with the CRbeam code: Comparison with CRPropa and ELMAG codes

论文作者

Kalashev, O., Korochkin, A., Neronov, A., Semikoz, D.

论文摘要

非常高的能量伽玛射线在通过播层间培养基传播过程中与低能量光子的相互作用中产生电子正电子对。电子峰值对产生伽马射线望远镜可检测到的次级伽玛射线。该二次发射可用于检测大规模结构空隙中的乳晶磁场(IGMF)。新的伽玛射线天文台,即切伦科夫望远镜阵列(CTA),将为检测这些次级伽马射线发射的检测提供敏感性,并启用其在宇宙学距离源的特性测量。 CTA数据的解释,包括对IGMF的检测以及其特性和起源的研究,将需要对主要和次级伽马射线通量进行精确建模。我们使用模型计算与公共可用的蒙特卡洛代码CRPROPA和ELMAG的模型计算来评估次级伽马射线排放的建模精度,并将其预测与理论期望以及新开发的CRBEAM代码的模型计算进行比较。我们发现,对于低红移来源,不同代码的模型预测差异高达50%,并且随着源红移的增加,差异提高到量顺序水平。我们确定了这些差异的起源,并证明在消除发现的不准确性之后,在建模附近的Z〜0.1源时,这三个代码之间的差异将减少到10%。我们认为,新的Crbeam代码为附近和远距离源的次级伽马射线信号的光谱,时序和成像特性提供了可靠的预测。因此,它可用于研究伽马射线源和IgMF,其精度水平适合于对通过绘制介质进行伽马射传播的影响的前瞻性CTA研究。

Very-high-energy gamma rays produce electron positron pairs in interactions with low-energy photons of extragalactic background light during propagation through the intergalactic medium. The electron-positron pairs generate secondary gamma rays detectable by gamma-ray telescopes. This secondary emission can be used to detect intergalactic magnetic fields (IGMF) in the voids of large-scale structure. A new gamma-ray observatory, namely, Cherenkov Telescope Array (CTA), will provide an increase in sensitivity for detections of these secondary gamma-ray emission and enable the measurement of its properties for sources at cosmological distances. The interpretation of the CTA data, including detection of IGMF and study of its properties and origins, will require precision modeling of the primary and secondary gamma-ray fluxes. We asses the precision of the modeling of the secondary gamma-ray emission using model calculations with publicly available Monte-Carlo codes CRPropa and ELMAG and compare their predictions with theoretical expectations and with model calculations of a newly developed CRbeam code. We find that model predictions of different codes differ by up to 50% for low-redshift sources, with discrepancies increasing up to order-of-magnitude level with the increasing source redshifts. We identify the origin of these discrepancies and demonstrate that after eliminating the inaccuracies found, the discrepancies between the three codes are reduced to 10% when modeling nearby sources with z~0.1. We argue that the new CRbeam code provides reliable predictions for spectral, timing and imaging properties of the secondary gamma-ray signal for both nearby and distant sources with z~1. Thus, it can be used to study gamma-ray sources and IGMF with a level of precision that is appropriate for the prospective CTA study of the effects of gamma-ray propagation through the intergalactic medium.

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