论文标题
低能宇宙射线
Low energy cosmic rays
论文作者
论文摘要
低能宇宙射线(直至GEV能量结构域)在星际培养基最稠密阶段的物理和化学中起着至关重要的作用。与星际电离辐射不同,它们可以穿透大量的气体密度,并到达分子云芯。通过保持小但不忽略的气体电离部分,它们决定了等离子体和磁场之间的耦合,这反过来影响云的动态演化以及对恒星和行星形成过程的影响。星际云中分子氢的宇宙射线离子化也驱动了丰富的星际化学反应,该化学在电磁光谱的宽阔区域中观察到了光谱线的观察,从集体仪到视觉带。天体物理学各个分支机构的最新发展为我们提供了对低能宇宙射线的前所未有的观点。现在,对于非常局部的星际介质和遥远的星际云,可以使用对此类颗粒强度的准确测量和约束。当前对这些最新数据的解释进行了辩论,新兴的图片要求重新评估该场景,以描述银河系中低能宇宙射线的起源和/或运输。
Low energy cosmic rays (up to the GeV energy domain) play a crucial role in the physics and chemistry of the densest phase of the interstellar medium. Unlike interstellar ionising radiation, they can penetrate large column densities of gas, and reach molecular cloud cores. By maintaining there a small but not negligible gas ionisation fraction, they dictate the coupling between the plasma and the magnetic field, which in turn affects the dynamical evolution of clouds and impacts on the process of star and planet formation. The cosmic-ray ionisation of molecular hydrogen in interstellar clouds also drives the rich interstellar chemistry revealed by observations of spectral lines in a broad region of the electromagnetic spectrum, spanning from the submillimetre to the visual band. Some recent developments in various branches of astrophysics provide us with an unprecedented view on low energy cosmic rays. Accurate measurements and constraints on the intensity of such particles are now available both for the very local interstellar medium and for distant interstellar clouds. The interpretation of these recent data is currently debated, and the emerging picture calls for a reassessment of the scenario invoked to describe the origin and/or the transport of low energy cosmic rays in the Galaxy.