Merging of unequal mass binary black holes in non-axisymmetric galactic nuclei
arXiv:2008.04342 · doi:10.1051/0004-6361/202244354
Abstract
In this work, we study the stellar-dynamical hardening of unequal mass supermassive black hole (SMBH) binaries in the central regions of merging galactic nuclei. We present a comprehensive set of direct -body simulations of the problem, varying both the total mass and the mass ratio of the SMBH binary (SMBHB). Simulations were carried out with the GPU -body code, which enabled us to fully exploit supercomputers equipped with graphic processing units (GPUs). As a model for the galactic nuclei, we adopted initial axisymmetric, rotating models, aimed at reproducing the properties of a galactic nucleus emerging from a galaxy merger event, containing two SMBHs which were unbound initially. We found no 'final-parsec problem', as our SMBHs tend to pair and shrink without showing significant signs of stalling. This confirms earlier results and extends them to large particle numbers and rotating systems. We find that the SMBHB hardening depends on the binary-reduced mass ratio via a single parameter function. Our results suggest that, at a fixed value for the SMBHB primary mass, the merger time of highly asymmetric binaries is up to four order of magnitudes smaller than the equal-mass binaries. This can significantly affect the population of SMBHs potentially detectable as gravitational wave sources.
7 pages, 5 figures, accepted to A&A
References in corpus (14)
- A Compact Supermassive Binary Black Hole System
- The influence of gas on the structure of merger remnants
- Performance Analysis of Direct N-Body Algorithms on Special-Purpose Supercomputers
- The Black Hole Mass Scale of Classical and Pseudo Bulges in Active Galaxies
- 6th and 8th Order Hermite Integrator for N-body Simulations
- Growing Massive Black Hole Pairs in Minor Mergers of Disk Galaxies
- Constraining the Orbit of Supermassive Black Hole Binary 0402+379
- NGC6240: A triple nucleus system in the advanced or final state of merging
- Eccentricity evolution of massive black hole binaries from formation to coalescence
- SMBH in Galactic Nuclei with Tidal Disruption of Stars
- On the eccentricity evolution of massive black hole binaries in stellar backgrounds
- Revisiting the complex nuclear region of NGC 6240 with Chandra
- First direct dynamical detection of a dual supermassive black hole system at sub-kiloparsec separation
- Merging timescale for supermassive black hole binary in interacting galaxy NGC 6240