论文标题
天体物理等离子体中的双康普顿过程
The double Compton process in astrophysical plasmas
论文作者
论文摘要
我们研究了多种粒子能量的双康普顿(DC)过程,并采用了使用数值和分析方法,扩展了以前的治疗方法。这使我们能够研究直流过程的物理学,直到早期宇宙中与电磁粒子级联相关的高度相对论状态和呈光子主导的天体物理等离子体。获得了软光子极限中直流发射率的广义分析表达式。将这些与现有的近似值进行了比较,这是第一次研究超忠实的制度。我们还整合了整个DC碰撞项,以计算一般粒子能量的直流发射率。讨论了对天体物理等离子体中直流红外发散的仔细处理,包括与刺激直流发射有关的微妙效果。可以使用代码DCPACK有效地表示所获得的结果,该结果还允许一个人计算一般传入电子和光子分布的平均发射率。这使天体物理等离子体内的直流过程建模在固体基础上,并应特别针对早期宇宙中宇宙学热化问题的计算进行应用。
We study the double Compton (DC) process for a wide range of particle energies, extending previous treatments well beyond the soft photon limit, employing both numerical and analytical methods. This allows us to investigate the physics of the DC process up to the highly relativistic regime relevant to electromagnetic particle cascades in the early Universe and photon-dominated astrophysical plasmas. Generalized exact analytic expressions for the DC emissivity in the soft photon limit are obtained. These are compared to existing approximations, for the first time studying the ultra-relativistic regime. We also numerically integrate the full DC collision term calculating the DC emissivity at general particle energies. A careful treatment of DC infrared divergences inside astrophysical plasmas, including subtle effects related to the presence of stimulated DC emission, is discussed. The obtained results can be efficiently represented using the code DCpack, which also allows one to compute average emissivities for general incoming electron and photon distributions. This puts the modelling of the DC process inside astrophysical plasmas on a solid footing and should find applications in particular for computations of the cosmological thermalization problem in the early Universe.