在不相互作用的孤立双星中黑洞的形成

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Matthias U. Kruckow, Jeff J. Andrews, Tassos Fragos, Berry Holl, Simone S. Bavera, Max Briel, Seth Gossage, Konstantinos Kovlakas, Kyle A. Rocha, Meng Sun, Philipp M. Srivastava, Zepei Xing, Emmanouil Zapartas
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引用次数: 0

摘要

上下文。利用盖亚发现的黑洞,尤其是盖亚BH1和BH2,在宽轨道上有类似太阳的金属丰度的低质量伴星。对于包含相互作用的孤立双星演化的标准形成通道来说,这种极端的质量比是出乎意料的,特别是对于运行数百至数千天的轨道。我们研究了孤立双星的非相互作用形成路径,以解释Gaia BH1和bh2的形成。我们使用MESA计算的单星模型来约束盖亚BH1和BH2等长周期黑洞双星可能的祖先的主要特征。然后,我们将这些模型网格合并到双星居群合成代码POSYDON中,以探索在太阳金属丰度下观察到的双星是否确实可能形成。我们发现,大质量恒星(≥80 M⊙)的风,特别是在Wolf-Rayet阶段,往往会导致初始恒星质量与最终黑洞质量的关系趋于平稳(在我们的默认风公式中约为13 M⊙)。然而,早期演化阶段的恒星风在高金属丰度时也很重要,因为它们阻止了最大质量恒星的膨胀(< 100 R⊙)并填满它们的罗氏叶。因此,施加风的强度影响了非相互作用双星中最终黑洞质量的范围,这使得形成类似盖亚BH1和bh2的系统成为可能。我们推断,具有黑洞和低质量伴星的宽双星可以在没有二元相互作用的情况下形成高金属丰度。银河系中可能有数百个这样的星系。通过非相互作用通道进化的双星黑洞的质量可能提供了对祖先进化期间风强度的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The formation of black holes in non-interacting isolated binaries
Context. The black holes discovered using Gaia, especially Gaia BH1 and BH2, have low-mass companions of solar-like metallicity in wide orbits. For standard formation channels of isolated binary evolution that include interactions, this extreme mass ratio is unexpected, especially for orbits of hundreds to thousands of days.Aims. We investigate a non-interacting formation path for isolated binaries to explain the formation of Gaia BH1 and BH2.Methods. We used single star models computed with MESA to constrain the main characteristics of possible progenitors of long-period black hole binaries such as Gaia BH1 and BH2. Then, we incorporated these model grids into the binary population synthesis code POSYDON to explore whether the formation of the observed binaries at solar metallicity is indeed possible.Results. We find that winds of massive stars (≳80 M), especially during the Wolf-Rayet phase, tend to cause a plateau in the relation of the initial stellar mass to final black hole mass (at about 13 M in our default wind prescription). However, stellar winds at earlier evolutionary phases are also important at high metallicity, as they prevent the most massive stars from expanding (< 100 R) and filling their Roche lobe. Consequently, the strength of the applied winds affects the range of the final black hole masses in non-interacting binaries, which enables the formation of systems similar to Gaia BH1 and BH2.Conclusions. We deduce that wide binaries with a black hole and a low-mass companion can form at high metallicity without binary interactions. There could be hundreds of such systems in the Milky Way. The mass of the black hole in binaries that evolved through the non-interacting channel might provide insights into the wind strength during the progenitor evolution.
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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