Gravitational Wave Recoil and Kick Processes in the Merger of Two Colliding Black Holes: The Non Head-on Case
R. F. Aranha, I. Dami\~ao Soares, E. V. Tonini

TL;DR
This paper numerically investigates gravitational wave recoil in non head-on black hole mergers using Robinson-Trautman spacetimes, revealing how the net kick velocity depends on mass ratio and initial collision parameters.
Contribution
It introduces a new numerical approach to analyze gravitational wave recoil in non head-on black hole collisions and fits the kick velocity distribution with a modified law.
Findings
Net recoil velocities up to 610 km/s for high initial velocities.
Kick velocity distribution fits a modified Fitchett law.
Asymptotic center-of-mass velocity approaches the net kick velocity.
Abstract
We examine numerically the process of gravitational wave recoil in the merger of two black holes in non head-on collision, in the realm of Robinson-Trautman spacetimes. Characteristic initial data for the system are constructed, and the evolution covers the post-merger phase up to the final configuration of the remnant black hole. The net momentum flux carried out by gravitational waves and the associated impulses are evaluated. Our analysis is based on the Bondi-Sachs conservation laws for the energy momentum of the system. The net kick velocity imparted to the merged system by the total gravitational wave impulse is also evaluated. Typically for a non head-on collision the net momentum flux carried out by gravitational waves is nonzero for equal-mass colliding black holes. The distribution of as a function of the symmetric mass ratio is well fitted by a modified…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Pulsars and Gravitational Waves Research · Astrophysical Phenomena and Observations
