论文标题
弱磁化的相对论天体冲击波的物理学和现象学
Physics and phenomenology of weakly magnetized, relativistic astrophysical shock waves
论文作者
论文摘要
弱磁化的相对论无碰撞冲击波不仅是高能天体物理学来源中相对论喷射的天然后代,而且还与通过粒子加速和辐射的一些最出色的能量耗散显示有关。也许他们最奇特,最令人兴奋的特征是维持加速过程的磁化湍流,并且(可能是)次级辐射本身是由加速粒子本身自我激发的,因此这些冲击波的现象学在震动的微观物理学上强烈地铰接。在这篇综述中,我们绘制了该微物理学的状态报告,对粒子中的模拟进行了分析论证,并提取了直接兴趣对现象学的后果,特别是关于现象学研究中所谓的微物理参数。
Weakly magnetized, relativistic collisionless shock waves are not only the natural offsprings of relativistic jets in high-energy astrophysical sources, they are also associated with some of the most outstanding displays of energy dissipation through particle acceleration and radiation. Perhaps their most peculiar and exciting feature is that the magnetized turbulence that sustains the acceleration process, and (possibly) the secondary radiation itself, is self-excited by the accelerated particles themselves, so that the phenomenology of these shock waves hinges strongly on the microphysics of the shock. In this review, we draw a status report of this microphysics, benchmarking analytical arguments with particle-in-cell simulations, and extract consequences of direct interest to the phenomenology, regarding in particular the so-called microphysical parameters used in phenomenological studies.