倾斜的暗晕很常见,而且存在时间很长,可以扭曲星系盘

IF 8.8 1区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Astrophysical Journal Letters Pub Date : 2023-11-01 DOI:10.3847/2041-8213/ad0641
Jiwon Jesse Han, Vadim Semenov, Charlie Conroy, Lars Hernquist
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引用次数: 0

摘要

在Lambda冷暗物质范式中,暗晕控制着星系形成和演化的引力势。在这封信中,我们表明,目前的内部(r <50kpc)的暗晕可能与星盘明显错位。为此,我们使用TNG50运行从宇宙磁流体动力学IllustrisTNG模拟套件。这种“倾斜”的暗晕可能是由各种过程产生的,包括重大合并、大规模飞掠或与卫星伴星的相互作用。此外,我们表明倾斜的暗晕(1)可以被倾斜的恒星晕很好地追踪,(2)可以在孤立的演化中保持其倾斜> 5gyr,(3)可以在外盘产生在许多Gyr内稳定的翘曲。倾斜的暗晕为星系形成历史中的重要事件提供了线索,并有助于解释包括银河系在内的星系观测中大量扭曲盘的现象。
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Tilted Dark Halos Are Common and Long-lived, and Can Warp Galactic Disks
Abstract In the Lambda cold dark matter paradigm, the dark halo governs the gravitational potential within which a galaxy can form and evolve. In this Letter we show that the present-day inner ( r < 50 kpc) dark halo can be significantly misaligned with the stellar disk. To this end, we use the TNG50 run from the cosmological magnetohydrodynamic IllustrisTNG simulation suite. Such “tilted” dark halos can arise from a variety of processes including major mergers, massive flybys, or interactions with satellite companions. Furthermore, we show that tilted dark halos (1) are well traced by tilted stellar halos, (2) can maintain their tilt for >5 Gyr in isolated evolution, and (3) can generate warps in the outer disks that are stable over many Gyr. A tilted dark halo holds clues to important events in the formation history of a galaxy, and could help explain the abundance of warped disks in galaxy observations, including the Milky Way.
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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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