How Nested Bars Enhance, Modulate, and Are Destroyed by Gas Inflows

IF 4.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Astrophysical Journal Pub Date : 2023-11-01 DOI:10.3847/1538-4357/acffb3
Zhi Li, Min Du, Victor P. Debattista, Juntai Shen, Hui Li, Jie Liu, Mark Vogelsberger, Angus Beane, Federico Marinacci, Laura V. Sales
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Abstract

Abstract Gas flows in the presence of two independently rotating nested bars remain not fully understood but are likely to play an important role in fueling the central black hole. We use high-resolution hydrodynamical simulations with detailed models of subgrid physics to study this problem. Our results show that the inner bar in double-barred galaxies can help drive gas flow from the nuclear ring to the center. In contrast, gas inflow usually stalls at the nuclear ring in single-barred galaxies. The inner bar causes a quasiperiodic inflow with a frequency determined by the difference between the two bar pattern speeds. We find that the star formation rate is higher in the model with two bars than in that with one bar. The inner bar in our model gradually weakens and dissolves due to gas inflow over a few billion years. Star formation produces metal-rich/ α -poor stars, which slows the weakening of the inner bar but does not halt its eventual decay. We also present a qualitative comparison of the gas morphology and kinematics in our simulations with those of observed double-barred galaxies.
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嵌套条纹如何被气体流入增强、调节和破坏
在两个独立旋转的嵌套棒状星系中,气体的流动仍未被完全理解,但很可能在为中心黑洞提供燃料方面发挥着重要作用。我们使用高分辨率的流体动力学模拟和详细的亚网格物理模型来研究这个问题。我们的研究结果表明,在双棒星系中,内棒可以帮助驱动气体从核环流向中心。相比之下,在单棒星系中,气体流入通常在核环处停止。内柱产生准周期性流入,其频率由两柱模式速度之差决定。我们发现,在有两个棒材的模型中,恒星的形成率要高于有一个棒材的模型。在几十亿年的时间里,由于气体的流入,我们模型中的内棒状结构逐渐减弱并溶解。恒星的形成产生了富金属/贫α的恒星,这减缓了内棒的减弱,但并不能阻止其最终的衰变。我们还提出了在我们的模拟中与观测到的双棒星系的气体形态和运动学的定性比较。
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来源期刊
Astrophysical Journal
Astrophysical Journal 地学天文-天文与天体物理
CiteScore
8.40
自引率
30.60%
发文量
2854
审稿时长
1 months
期刊介绍: The Astrophysical Journal is the foremost research journal in the world devoted to recent developments, discoveries, and theories in astronomy and astrophysics.
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