Merging timescale for supermassive black hole binary in interacting galaxy NGC 6240
arXiv:2105.14503 · doi:10.1051/0004-6361/202039859
Abstract
One of the main possible way of creating the supermassive black hole (SMBH) is a so call hierarchical merging scenario. Central SMBHs at the final phase of interacting and coalescing host-galaxies are observed as SMBH binary (SMBHB) candidates at different separations from hundreds of pc to mpc. Today one of the strongest SMBHB candidate is a ULIRG galaxy NGC 6240 which was X-ray spatially and spectroscopically resolved by Chandra. Dynamical calculation of central SMBHBs merging in a dense stellar environment allows us to retrace their evolution from kpc to mpc scales. The main goal of our dynamical modeling was to reach the final, gravitational wave (GW) emission regime for the model BHs. We present the direct N-body simulations with up to one million particles and relativistic post-Newtonian corrections for the SMBHs particles up to 3.5 post-Newtonian terms. Generally speaking, the set of initial physical conditions can strongly effect of our merging time estimations. But in a range of our parameters, we did not find any strong correlation between merging time and BHs mass or BH to bulge mass ratios. Varying the model numerical parameters (such as particle number - N) makes our results quite robust and physically more motivated. From our 20 models we found the upper limit of merging time for central SMBHB is less than 55 Myr. This concrete number are valid only for our set of combination of initial mass ratios. Further detailed research of rare dual/multiple BHs in dense stellar environment (based on observations data) can clarify the dynamical co-evolution of central BHs and their host-galaxies.
11 pages, 6 figures, 3 tables, Accepted for publication in Astronomy & Astrophysics
References in corpus (15)
- The stochastic gravitational-wave background from massive black hole binary systems: implications for observations with Pulsar Timing Arrays
- An Update on Monitoring Stellar Orbits in the Galactic Center
- A Compact Supermassive Binary Black Hole System
- Massive black hole binary mergers within sub-pc scale gas discs
- Rapid Formation of Supermassive Black Hole Binaries in Galaxy Mergers with Gas
- Observational evidence for intermediate-mass black holes
- 6th and 8th Order Hermite Integrator for N-body Simulations
- Growing Massive Black Hole Pairs in Minor Mergers of Disk Galaxies
- Collisionless loss-cone refilling: there is no final parsec problem
- Buried AGNs in Advanced Mergers:Mid-infrared color selection as a dual AGN finder
- NGC6240: A triple nucleus system in the advanced or final state of merging
- Discovery of a dual active galactic nucleus with ~ 8 kpc separation
- The Molecular Gas in the NGC 6240 Merging Galaxy System at the Highest Spatial Resolution
- Defeating stochasticity: coalescence timescales of massive black holes in galaxy mergers
- X-ray emission from the nuclear region of Arp 220
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- NGC 6240 Supermassive Black Hole Binary dynamical evolution based on Chandra data
- Dynamics of supermassive black hole triples in the ROMULUS25 cosmological simulation