Multipole Analysis of Kicks in Collision of Binary Black Holes
arXiv:0807.3028 · doi:10.1007/s10714-008-0682-9
Abstract
Thorne and Kidder give expressions which allow for analytical estimates of the "kick", it i.e. the recoil, produced from asymmetrical gravitational radiation during the interaction of black holes, or in fact any gravitating compact bodies. (The Thorne-Kidder formula uses momentum flux calculations based on the linearized General Relativity of gravitational radiation.) We specifically treat kicks arising in the binary interaction of equal mass black holes, when at least one of the black holes has significant spin, a. Such configurations can produce very large kicks in computational simulations. We consider both fly-by and quasicircular orbits. For fly-by orbits we find substantial kicks from those Thorne-Kidder terms which are linear in a. For the quasi-circular case, we consider in addition the nonlinear contribution (O(a^2)) to the kicks, and provide a dynamical explanation for such terms. However, in the cases of maximal kick velocities, the dependence on spin is largely linear (reproduced in numerical results).
14 pages, 2 figures. Version 2: Title refined, slight wording and typo changes, new reference. Version 3: Version in press at General relativity and Gravitation
References in corpus (9)
- Direct cosmological simulations of the growth of black holes and galaxies
- Spin Flips and Precession in Black-Hole-Binary Mergers
- Anatomy of the binary black hole recoil: A multipolar analysis
- Binary Black Holes: Spin Dynamics and Gravitational Recoil
- Superkicks in Hyperbolic Encounters of Binary Black Holes
- The spin expansion for binary black hole merger: new predictions and future directions
- Construction of initial data for 3+1 numerical relativity
- Binary Black Hole Encounters, Gravitational Bursts and Maximum Final Spin
- Hubble Space Telescope Images of Red Mergers: How Dry are They?
Cited by in corpus (8)
- High-accuracy waveforms for binary black hole inspiral, merger, and ringdown
- Recoiling black holes: electromagnetic signatures, candidates, and astrophysical implications
- Modeling maximum astrophysical gravitational recoil velocities
- Accuracy Issues for Numerical Waveforms
- Modeling Gravitational Recoil Using Numerical Relativity
- Advances in Simulations of Generic Black-Hole Binaries
- Seeking for toroidal event horizons from initially stationary BH configurations
- Accurate models for recoil velocity distribution in black hole mergers with comparable to extreme mass-ratios and their astrophysical implications