Published March 15, 2021 | Version Accepted Version + Published
Journal Article Open

Electromagnetic emission from a binary black hole merger remnant in plasma: Field alignment and plasma temperature

  • 1. ROR icon University of Maryland, Baltimore County
  • 2. ROR icon Goddard Space Flight Center
  • 3. ROR icon West Virginia University
  • 4. ROR icon University of Maryland, College Park
  • 5. ROR icon California Institute of Technology

Abstract

Comparable-mass black-hole mergers generically result in moderate to highly spinning holes, whose spacetime curvature will significantly affect nearby matter in observable ways. We investigate how the moderate spin of a postmerger Kerr black hole immersed in a plasma with initially uniform density and uniform magnetic field affects potentially observable accretion rates and energy fluxes. Varying the initial specific internal energy of the plasma over two decades, we find very little change in steady-state mass accretion rate or Poynting luminosity, except at the lowest internal energies, where fluxes do not exhibit steady-state behavior during the simulation timescale. Fixing the internal energy and varying the initial fixed magnetic-field amplitude and orientation, we find that the steady-state Poynting luminosity depends strongly on the initial field angle with respect to the black hole spin axis, while the matter accretion rate is more stable until the field angle exceeds ∼45°. The protojet formed along the black hole spin axis conforms to a thin, elongated cylinder near the hole, while aligning with the asymptotic magnetic field at large distances.

Additional Information

© 2021 American Physical Society. Received 26 October 2020; accepted 12 February 2021; published 26 March 2021. Support for this research was provided by NASA's Astrophysics Science Division Research Program. S. C. N. was supported in part by an appointment to the NASA Postdoctoral Program at the Goddard Space Flight Center administrated by USRA through a contract with NASA. Z. B. E. gratefully acknowledges the NSF for financial support from Grants No. OIA-1458952, No. PHY-1806596, and No. OAC-2004311; and NASA for financial support from Grants No. ISFM-80NSSC18K0538 and No. TCAN-80NSSC18K1488. G. R. acknowledges the support from the University of Maryland through the Joint Space Science Institute Prize Postdoctoral Fellowship. The new numerical simulations presented in this paper were performed in part on the Pleiades cluster at the Ames Research Center, with support provided by the NASA High-End Computing (HEC) Program. Computational resources were also provided by West Virginia University's Spruce Knob high-performance computing cluster, funded in part by NSF EPSCoR Research Infrastructure Improvement Cooperative Agreement No. 1003907, the state of West Virginia (WVEPSCoR via the Higher Education Policy Commission), and West Virginia University.

Attached Files

Published - PhysRevD.103.063039.pdf

Accepted Version - 2010.11259.pdf

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2010.11259.pdf

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Additional details

Identifiers

Eprint ID
108791
Resolver ID
CaltechAUTHORS:20210421-154343020

Related works

Funding

NASA Postdoctoral Program
NSF
OIA-1458952
NSF
PHY-1806596
NSF
OAC-2004311
NASA
ISFM-80NSSC18K0538
NASA
TCAN-80NSSC18K1488
University of Maryland
NSF
OIA-1003907
State of West Virginia
West Virginia University

Dates

Created
2021-04-22
Created from EPrint's datestamp field
Updated
2021-04-22
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