IF 0.3 4区 物理与天体物理 Q4 PHYSICS, NUCLEAR
D. N. Morozova, A. V. Kuznetsov, A. G. Mayorov, K. S. Chelidze
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引用次数: 0

摘要

在 PAMELA 实验中,在记录源于地外的伽马射线暴的时刻,探测到了来自地球辐射带的电子沉淀,从而提出了关于这些现象之间关系的假设。这项研究估算了通过康普顿效应与伽马量子发生相互作用,并在所谓的玩具模型近似中改变了能量和轨迹的电子数量。根据电子发射的角度和发射电子的能谱,得到了一个确定伽马量子与静止电子相互作用截面的公式。在次级电子能量分布的最大能量附近观察到一个狭窄的峰值,它接近于初始伽马量子的能量。对 PAMELA 实验中记录的电子计数率超过背景值的贡献上限进行了估计。结果发现,所提出的机制并不能解释所观测到的效应,因为计算出的电子计数率要低几个数量级,可以用较小的康普顿散射截面来解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Compton Scattering of Cosmic Gamma Radiation by Electrons in the Earth’s Radiation Belts

Compton Scattering of Cosmic Gamma Radiation by Electrons in the Earth’s Radiation Belts

In the PAMELA experiment, precipitation of electrons from the Earth’s radiation belt was detected at moments of recording gamma ray bursts of extraterrestrial origin, leading to a hypothesis about the relationship between these phenomena. This work provides estimates of the number of electrons that have interacted with gamma quanta through the Compton effect and changed their energy and trajectories in the so-called toy model approximation. A formula is obtained for determining the cross section of the interaction between a gamma quantum and a stationary electron, depending on the angle of electron emission and the energy spectrum of the emitted electrons. A narrow peak is observed near the maximum energy in the energy distribution of secondary electrons, which is close to the energy of the initial gamma quantum. An estimate is obtained for the upper limit of the contribution from the considered process to the excess of the electron count rate over the background value recorded in the PAMELA experiment. It is found that the proposed mechanism does not explain the observed effect because the calculated electron count rate is several orders of magnitude lower and can be explained by the small Compton scattering cross section.

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来源期刊
Physics of Atomic Nuclei
Physics of Atomic Nuclei 物理-物理:核物理
CiteScore
0.60
自引率
25.00%
发文量
56
审稿时长
3-6 weeks
期刊介绍: Physics of Atomic Nuclei is a journal that covers experimental and theoretical studies of nuclear physics: nuclear structure, spectra, and properties; radiation, fission, and nuclear reactions induced by photons, leptons, hadrons, and nuclei; fundamental interactions and symmetries; hadrons (with light, strange, charm, and bottom quarks); particle collisions at high and superhigh energies; gauge and unified quantum field theories, quark models, supersymmetry and supergravity, astrophysics and cosmology.
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