4.7 Article

Accretion disks around binary black holes of unequal mass: General relativistic MHD simulations of postdecoupling and merger

Journal

PHYSICAL REVIEW D
Volume 90, Issue 10, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.90.104030

Keywords

-

Funding

  1. NSF [PHY-0963136, PHY-1300903, OCI-1053575]
  2. NASA at the University of Illinois at Urbana-Champaign [NNX11AE11G, NNX13AH44G]
  3. Fortner Fellowship at UIUC
  4. NSERC of Canada
  5. Canada Chairs Program
  6. Canadian Institute for Advanced Research
  7. Canada Foundation for Innovation under the auspices of Compute Canada
  8. Government of Ontario
  9. Ontario Research Fund-Research Excellence
  10. University of Toronto
  11. National Science Foundation [OCI 07-25070]
  12. state of Illinois
  13. Direct For Mathematical & Physical Scien
  14. Division Of Physics [1300903] Funding Source: National Science Foundation
  15. NASA [473897, NNX11AE11G, 148375, NNX13AH44G] Funding Source: Federal RePORTER

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We report results from simulations in general relativity of magnetized disks accreting onto merging black hole binaries, starting from relaxed disk initial data. The simulations feature an effective, rapid radiative cooling scheme as a limiting case of future treatments with radiative transfer. Here we evolve the systems after binary-disk decoupling through inspiral and merger, and analyze the dependence on the binary mass ratio with q equivalent to m(bh)/M-BH = 1; 1/2, and 1/4. We find that the luminosity associated with local cooling is larger than the luminosity associated with matter kinetic outflows, while the electromagnetic (Poynting) luminosity associated with bulk transport of magnetic field energy is the smallest. The cooling luminosity around merger is only marginally smaller than that of a single, nonspinning black hole. Incipient jets are launched independently of the mass ratio, while the same initial disk accreting on a single nonspinning black hole does not lead to a jet, as expected. For all mass ratios we see a transient behavior in the collimated, magnetized outflows lasting 2-5 (M/10(8)M(circle dot)) days after merger: the outflows become increasingly magnetically dominated and accelerated to higher velocities, boosting the Poynting luminosity. These sudden changes can alter the electromagnetic emission across the jet and potentially help distinguish mergers of black holes in active galactic nucleus (AGNs) from single accreting black holes based on jet morphology alone.

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