4.6 Article

Resolving the Complex Evolution of a Supermassive Black Hole Triplet in a Cosmological Simulation

期刊

ASTROPHYSICAL JOURNAL LETTERS
卷 912, 期 2, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.3847/2041-8213/abf9a5

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资金

  1. European Research Council via ERC Consolidator Grant KETJU [818930]
  2. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy from the DFG Cluster of Excellence ORIGINS [EXC-2094-390783311]
  3. European Research Council (ERC) [818930] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

This study presents a cosmological zoom-in simulation of a triple supermassive black hole system forming during a complex galaxy merger. The simulation captures the complex behavior of the multiple SMBHs, including ejection of one SMBH and Lidov-Kozai oscillations, which cannot be accurately modeled using simple semianalytic models.
We present here a self-consistent cosmological zoom-in simulation of a triple supermassive black hole (SMBH) system forming in a complex multiple galaxy merger. The simulation is run with an updated version of our code KETJU, which is able to follow the motion of SMBHs down to separations of tens of Schwarzschild radii while simultaneously modeling the large-scale astrophysical processes in the surrounding galaxies, such as gas cooling, star formation, and stellar and AGN feedback. Our simulation produces initially an SMBH binary system for which the hardening process is interrupted by the late arrival of a third SMBH. The KETJU code is able to accurately model the complex behavior occurring in such a triple SMBH system, including the ejection of one SMBH to a kiloparsec-scale orbit in the galaxy due to strong three-body interactions as well as Lidov-Kozai oscillations suppressed by relativistic precession when the SMBHs are in a hierarchical configuration. One pair of SMBHs merges similar to 3 Gyr after the initial galaxy merger, while the remaining binary is at a parsec-scale separation when the simulation ends at redshift z = 0. We also show that KETJU can capture the effects of the SMBH binaries and triplets on the surrounding stellar population, which can affect the binary merger timescales as the stellar density in the system evolves. Our results demonstrate the importance of dynamically resolving the complex behavior of multiple SMBHs in galactic mergers, as such systems cannot be readily modeled using simple orbit-averaged semianalytic models.

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