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Universality, maximum radiation and absorption in high-energy collisions of black holes with spin

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arxiv 1211.6114 v2 pith:BF7PFESI submitted 2012-11-26 gr-qc hep-th

classification gr-qchep-th
keywords energyblackspincollisionscenter-of-massfindhigh-energyhole
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We explore the impact of black hole spins on the dynamics of high-energy black hole collisions. We report results from numerical simulations with gamma-factors up to 2.49 and dimensionless spin parameter +0.85, +0.6, 0, -0.6, -0.85. We find that the scattering threshold becomes independent of spin at large center-of-mass energies, confirming previous conjectures that structure does not matter in ultrarelativistic collisions. It has further been argued that in this limit all of the kinetic energy of the system may be radiated by fine tuning the impact parameter to threshold. On the contrary, we find that only about 60% of the kinetic energy is radiated for gamma=2.49. By monitoring apparent horizons before and after scattering events we show that the "missing energy" is absorbed by the individual black holes in the encounter, and moreover the individual black-hole spins change significantly. We support this conclusion with perturbative calculations. An extrapolation of our results to the limit gamma->infinity suggests that about half of the center-of-mass energy of the system can be emitted in gravitational radiation, while the rest must be converted into rest-mass and spin energy.

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Cited by 4 Pith papers

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  2. Scalarization and descalarization in hyperbolic encounters of black holes

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    Numerical relativity in the decoupling limit reveals dynamical scalarization and spin-induced (de)scalarization during hyperbolic black hole encounters for both signs of the coupling.

  3. Spin-up and mass-gain in hyperbolic encounters of spinning black holes

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    Scattering black holes gain spin and mass by absorbing emitted gravitational radiation, with spin-up up to 0.3 and mass gain up to 15% in near-threshold encounters.

  4. The Era of Precision in Computational Models of Gravitational Waves

    gr-qc 2026-07 accept novelty 2.0 of 10

    Numerical relativity solved the general-relativistic two-body problem in the mid-2000s, supplying the waveform models that enabled LIGO's first gravitational-wave detections.

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