星系和星系团中的宇宙射线反馈

IF 27.8 1区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Mateusz Ruszkowski, Christoph Pfrommer
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引用次数: 2

摘要

理解控制星系形成的物理机制是当代天体物理学的一个基本挑战。天体物理反馈领域的最新进展强烈表明,宇宙射线(CRs)可能对我们理解宇宙星系的形成和演化至关重要。CRs的吸引人的特点是其相对较长的冷却时间和相对较强的动力耦合气体。在星系中,cr可以与星际介质中的热、磁和湍流能量密度接近均分,并且在驱动大规模星系风方面可能具有非常重要的动态作用。同样,cr可能对环星系介质中的压力有重要贡献。在星系团中,cr可能通过促进星系团内介质的有效加热和防止过多的恒星形成,在解决经典的冷却流问题方面发挥关键作用。总的来说,CR与等离子体相互作用的潜在物理特性在星际、银河系周围和星系团内介质的整个尺度范围内表现出广泛的相似之处。在这里,我们回顾了这一领域的最新进展,并提供了宇宙射线等离子体物理学的教学介绍,包括波粒相互作用的物理学,加速过程,CR空间和光谱传输,以及重要的冷却过程。该领域的发现时机已经成熟,在未来十年里,它将继续是理论、计算和观测研究的主题,对跨越整个电磁波谱宽度和多信使数据的恒星和超大质量黑洞反馈的观测结果的解释具有深远的意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cosmic ray feedback in galaxies and galaxy clusters

Cosmic ray feedback in galaxies and galaxy clusters

Understanding the physical mechanisms that control galaxy formation is a fundamental challenge in contemporary astrophysics. Recent advances in the field of astrophysical feedback strongly suggest that cosmic rays (CRs) may be crucially important for our understanding of cosmological galaxy formation and evolution. The appealing features of CRs are their relatively long cooling times and relatively strong dynamical coupling to the gas. In galaxies, CRs can be close to equipartition with the thermal, magnetic, and turbulent energy density in the interstellar medium, and can be dynamically very important in driving large-scale galactic winds. Similarly, CRs may provide a significant contribution to the pressure in the circumgalactic medium. In galaxy clusters, CRs may play a key role in addressing the classic cooling flow problem by facilitating efficient heating of the intracluster medium and preventing excessive star formation. Overall, the underlying physics of CR interactions with plasmas exhibit broad parallels across the entire range of scales characteristic of the interstellar, circumgalactic, and intracluster media. Here we present a review of the state-of-the-art of this field and provide a pedagogical introduction to cosmic ray plasma physics, including the physics of wave–particle interactions, acceleration processes, CR spatial and spectral transport, and important cooling processes. The field is ripe for discovery and will remain the subject of intense theoretical, computational, and observational research over the next decade with profound implications for the interpretation of the observations of stellar and supermassive black hole feedback spanning the entire width of the electromagnetic spectrum and multi-messenger data.

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来源期刊
The Astronomy and Astrophysics Review
The Astronomy and Astrophysics Review 地学天文-天文与天体物理
CiteScore
45.00
自引率
0.80%
发文量
7
期刊介绍: The Astronomy and Astrophysics Review is a journal that covers all areas of astronomy and astrophysics. It includes subjects related to other fields such as laboratory or particle physics, cosmic ray physics, studies in the solar system, astrobiology, instrumentation, and computational and statistical methods with specific astronomical applications. The frequency of review articles depends on the level of activity in different areas. The journal focuses on publishing review articles that are scientifically rigorous and easily comprehensible. These articles serve as a valuable resource for scientists, students, researchers, and lecturers who want to explore new or unfamiliar fields. The journal is abstracted and indexed in various databases including the Astrophysics Data System (ADS), BFI List, CNKI, CNPIEC, Current Contents/Physical, Chemical and Earth Sciences, Dimensions, EBSCO Academic Search, EI Compendex, Japanese Science and Technology, and more.
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