相对射流与星系团内介质相互作用的流体动力学模拟:在天鹅座a中的应用

IF 3.2 Q2 ASTRONOMY & ASTROPHYSICS
Galaxies Pub Date : 2023-03-04 DOI:10.3390/galaxies11020051
J. Zuhone, P. Nulsen, Po-Hsun Tseng, Hsi-Yu Schive, T. Jones
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引用次数: 0

摘要

天鹅座A的Fanaroff–Riley II类射电星系拥有产生无线电发射、X射线腔、茧状冲击和X射线热点的喷流,喷流在这些喷流中与ICM相互作用。一个热点周围有一个特殊的“洞”特征,表现为X射线发射不足。我们使用准直射流与波瓣和团簇等离子体之间的倾斜界面相互作用的相对论流体动力学模拟来模拟可能导致这种特征的基本过程。我们发现,喷流从界面反射出来,形成一股宽阔的湍流,流回波瓣,最初由界面剥离的气体主导,后来由团簇内介质本身剥离的气体支配。我们制作了ICM、热点和反射射流的X射线发射的简单模型,以表明在天鹅座a中看到的热点周围的发射洞可能是由反射射流发射的多普勒去增强产生的,正如观测者所看到的,视线几乎沿着出射物质的轴。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrodynamic Simulations of a Relativistic Jet Interacting with the Intracluster Medium: Application to Cygnus A
The Fanaroff–Riley Class II radio galaxy Cygnus A hosts jets that produce radio emission, X-ray cavities, cocoon shocks, and X-ray hotspots, where the jet interacts with the ICM. Surrounding one hotspot is a peculiar “hole” feature, which appears as a deficit in X-ray emission. We used relativistic hydrodynamic simulations of a collimated jet interacting with an inclined interface between lobe and cluster plasma to model the basic processes that may lead to such a feature. We found that the jet reflects off of the interface into a broad, turbulent flow back out into the lobe, which is dominated by gas stripped from the interface at first and from the intracluster medium itself at later times. We produced simple models of X-ray emission from the ICM, the hotspot, and the reflected jet to show that a hole of emission surrounding the hotspot as seen in Cygnus A may be produced by Doppler de-boosting of the emission from the reflected jet, as seen by an observer with a sight line nearly along the axis of the outgoing material.
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来源期刊
Galaxies
Galaxies Physics and Astronomy-Astronomy and Astrophysics
CiteScore
4.90
自引率
12.00%
发文量
100
审稿时长
11 weeks
期刊介绍: Es una revista internacional de acceso abierto revisada por pares que proporciona un foro avanzado para estudios relacionados con astronomía, astrofísica y cosmología. Areas temáticas Astronomía Astrofísica Cosmología Astronomía observacional: radio, infrarrojo, óptico, rayos X, neutrino, etc. Ciencia planetaria Equipos y tecnologías de astronomía. Ingeniería Aeroespacial Análisis de datos astronómicos. Astroquímica y Astrobiología. Arqueoastronomía Historia de la astronomía y cosmología. Problemas filosóficos en cosmología.
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