Estimating gravitational radiation from super-emitting compact binary systems
arXiv:1611.03506 · doi:10.1103/PhysRevD.95.124042
Abstract
Binary black hole mergers are among the most violent events in the Universe, leading to extreme warping of spacetime and copious emission of gravitational radiation. Even though black holes are the most compact objects they are not necessarily the most efficient emitters of gravitational radiation in binary systems. The final black hole resulting from a binary black hole merger retains a significant fraction of the pre-merger orbital energy and angular momentum. A non-vacuum system can in principle shed more of this energy than a black hole merger of equivalent mass. We study these super-emitters through a toy model that accounts for the possibility that the merger creates a compact object that retains a long-lived time-varying quadrupole moment. This toy model can capture the merger of neutron stars, but it can also be used to consider more exotic compact binaries. We hope that this toy model can serve as a guide to more rigorous numerical investigations into these systems.
10 pages, 5 figures
References in corpus (14)
- GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence
- Binary Black Hole Mergers in the first Advanced LIGO Observing Run
- Binary Neutron Star Mergers: Dependence on the Nuclear Equation of State
- How to tell a gravastar from a black hole
- Spectral properties of the post-merger gravitational-wave signal from binary neutron stars
- Estimating the final spin of a binary black hole coalescence
- Magnetized Neutron Star Mergers and Gravitational Wave Signals
- Upper limits on the rates of binary neutron star and neutron-star--black-hole mergers from Advanced LIGO's first observing run
- Properties of hypermassive neutron stars formed in mergers of spinning binaries
- Numerical Relativity and Astrophysics
- Orbital Dynamics of Binary Boson Star Systems
- Improved methods for simulating nearly extremal binary black holes
- Structure of Stable Binary Neutron Star Merger Remnants: a Case Study
- Maximum black-hole spin from quasi-circular binary mergers
Cited by in corpus (11)
- Gravitational Wave Signatures of Highly Compact Boson Star Binaries
- Probing axions with neutron star inspirals and other stellar processes
- Neutron star mergers as a probe of modifications of general relativity with finite-range scalar forces
- Gravitational Wave Emission from Collisions of Compact Scalar Solitons
- Gravitational Waves from Dark Boson Star binary mergers
- Formation of Relativistic Axion Stars
- Gravitational decoupling of generalized Horndeski hybrid stars
- Black hole formation in relativistic Oscillaton collisions
- Horndeski stars
- Horndeski fermion-boson stars
- Compact stars in Einstein-scalar-Gauss-Bonnet gravity: regular and divergent scalar field configurations