在合并星系团A514中发现大规模弯曲射电喷流

IF 8.8 1区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Astrophysical Journal Letters Pub Date : 2023-10-25 DOI:10.3847/2041-8213/acffc8
Wonki Lee, John ZuHone, M. James Jee, Kim HyeongHan, Ruta Kale, Eunmo Ahn
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引用次数: 0

摘要

我们报道了在合并星系团A514 (z = 0.071)中发现的大规模弯曲射电射流。射电辐射来自位于南亚星团中心附近的活动星系核(AGN)的两个射电叶,并以多个弯曲向南郊延伸。其独特的形态具有400kpc的“桥”,300kpc的“弧”和400kpc的“尾”,它们共同构成了其最大的线性尺寸约0.7 Mpc。我们发现,辐射的通量和光谱特征都随着离AGN的距离而变化。此外,“桥”呈现出60%的极化射电发射,与x射线冷锋相吻合。基于我们的多波长观测,我们提出A514提供了一个由合并驱动的气体运动引起的旧AGN等离子体重新分配的清晰案例。我们通过理想化的星系团合并模拟来支持我们的解释,该模拟采用被动示踪场来代表宇宙射线电子,并发现合并驱动的运动可以有效地在星系团外围产生这些粒子云,这些粒子云随后可以被星系团合并冲击重新加速并产生无线电遗迹。
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Discovery of A Large-scale Bent Radio Jet in the Merging Cluster A514
Abstract We report a discovery of a large-scale bent radio jet in the merging galaxy cluster A514 ( z = 0.071). The radio emission originates from the two radio lobes of the active galactic nucleus (AGN) located near the center of the southern subcluster and extends toward the southern outskirts with multiple bends. Its peculiar morphology is characterized by a 400 kpc “bridge,” a 300 kpc “arc,” and a 400 kpc “tail,” which together contribute to its largest linear size of ∼0.7 Mpc. We find that both the flux and spectral features of the emission change with the distance from the AGN. Also, the “bridge” presents a 60% polarized radio emission, which coincided with an X-ray cold front. Based on our multiwavelength observations, we propose that A514 presents a clear case for the redistribution of an old AGN plasma due to merger-driven gas motions. We support our interpretation with idealized cluster merger simulations employing a passive tracer field to represent cosmic-ray electrons and find that merger-driven motions can efficiently create a cloud of these particles in the cluster outskirts, which later can be reaccelerated by the cluster merger shock and produce radio relics.
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来源期刊
Astrophysical Journal Letters
Astrophysical Journal Letters ASTRONOMY & ASTROPHYSICS-
CiteScore
14.10
自引率
6.30%
发文量
513
审稿时长
2-3 weeks
期刊介绍: The Astrophysical Journal Letters (ApJL) is widely regarded as the foremost journal for swiftly disseminating groundbreaking astronomical research. It focuses on concise reports that highlight pivotal advancements in the field of astrophysics. By prioritizing timeliness and the generation of immediate interest among researchers, ApJL showcases articles featuring novel discoveries and critical findings that have a profound effect on the scientific community. Moreover, ApJL ensures that published articles are comprehensive in their scope, presenting context that can be readily comprehensible to scientists who may not possess expertise in the specific disciplines covered.
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