Engineering PapersSearch

DOE OSTI · 2587478

Relativistic gas accretion onto supermassive black hole binaries from inspiral through merger

Abstract

Accreting supermassive black hole binaries are powerful multimessenger sources emitting both gravitational and electromagnetic (EM) radiation. Understanding the accretion dynamics of these systems and predicting their distinctive EM signals is crucial to informing and guiding upcoming efforts aimed at detecting gravitational waves produced by these binaries. To this end, accurate numerical modeling is required to describe both the spacetime and the magnetized gas around the black holes. In this paper, we present two key advances in this field of research. First, we have developed a novel 3D general relativistic magnetohydrodynamics (GRMHD) framework that combines multiple numerical codes to simulate the inspiral and merger of supermassive black hole binaries starting from realistic initial data and running all the way through merger. Throughout the evolution, we adopt a simple but functional prescription to account for gas cooling through photon emission. Next, we have applied our new computational method to follow the time evolution of a circular, equal-mass, nonspinning black hole binary for ∼200 orbits, starting from a separation of 20⁢𝑟 𝑔 and reaching the postmerger evolutionary stage of the system. We have shown how mass continues to flow toward the binary even after the binary “decouples” from its surrounding disk, but the accretion rate onto the black holes diminishes. We have identified how the minidisks orbiting each black hole are slowly drained and eventually dissolve as the binary compresses. We confirm previous findings that the system’s luminosity decreases by a factor of a few during inspiral; however, we observe an abrupt increase by ∼50% in this quantity at the time of merger, likely accompanied by an equally abrupt change in spectrum. Lastly, we have demonstrated that during the inspiral, fluid ram pressure regulates the fraction of the magnetic flux transported to the binary that attaches to the black holes’ horizons.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Ennoggi, Lorenzo [Rochester Institute of Technology, NY (United States)] (ORCID:0000000227715765), Campanelli, Manuela [Rochester Institute of Technology, NY (United States)], Zlochower, Yosef [Rochester Institute of Technology, NY (United States)] (ORCID:0000000275416612), Noble, Scott C. [NASA Goddard Space Flight Center, Greenbelt, MD (United States)] (ORCID:0000000335478306), Krolik, Julian [Johns Hopkins University, Baltimore, MD (United States)], Cattorini, Federico [Università di Milano-Bicocca (Italy)] (ORCID:0000000239079583), Kalinani, Jay V. [Rochester Institute of Technology, NY (United States)] (ORCID:0000000229451142), Mewes, Vassilios [Oak Ridge National Laboratory (ORNL), Oak Ridge, TN (United States)] (ORCID:0000000158698542), Chabanov, Michail [Rochester Institute of Technology, NY (United States)] (ORCID:000000019676765X), Ji, Liwei [Rochester Institute of Technology, NY (United States)], de Simone, Maria Chiara [Rochester Institute of Technology, NY (United States)] (ORCID:0009000880881392). 2025-09-04. Relativistic gas accretion onto supermassive black hole binaries from inspiral through merger. https://doi.org/10.1103/yc25-v1q4

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related reports

Particle Acceleration in Collisionless Magnetically Arrested Disks

We present the first collisionless realization of two-dimensional axisymmetric black hole accretion consistent with a persistent magnetically arrested disk state. The accretion flow, consisting of an ion-electron disk plasma combined with magnetospheric pair creation effects, is simulated using first-principles general-relativistic particle-in-cell methods. The simulation is evolved over significant dynamical timescales during which a quasisteady accretion state is reached with several magnetic flux eruption cycles. We include a realistic treatment of inverse Compton scattering and pair production, which allows for studying the interaction between the collisionless accretion flow and pair-loaded jet. Our findings indicate that magnetic flux eruptions associated with equatorial magnetic reconnection within the black hole magnetosphere and the formation of spark gaps are locations of maximal particle acceleration. Flux eruptions, starting near the central black hole, can trigger Kelvin-Helmholtz-like vortices at the jet-disk interface that facilitate efficient mixing between disk and jet plasma in this region. Transient periods of increased pair production following magnetic flux eruptions and reconnection events are responsible for most of the highly accelerated particles.

Accretion disk & black-hole plasma