Tidal interaction in binary black hole inspiral
arXiv:gr-qc/0107029 · doi:10.1103/PhysRevLett.87.231101
Abstract
In rotating viscous fluid stars, tidal torque leads to an exchange of spin and orbital angular momentum. The horizon of a black hole has an effective viscosity that is large compared to that of stellar fluids, and an effective tidal torque may lead to important effects in the strong field interaction at the endpoint of the inspiral of two rapidly rotating holes. In the most interesting case both holes are maximally rotating and all angular momenta (orbital and spins) are aligned. We point out here that in such a case (i) the transfer of angular momentum may have an important effect in modifying the gravitational wave ``chirp'' at the endpoint of inspiral. (ii) The tidal transfer of spin energy to orbital energy may increase the amount of energy being radiated. (iii) Tidal transfer in such systems may provide a mechanism for shedding excess angular momentum. We argue that numerical relativity, the only tool for determining the importance of tidal torque, should be more specifically focused on binary configurations with aligned, large, angular momenta.
5 pages, 2 figures
References in corpus (3)
Cited by in corpus (23)
- Dissipative Effects in the Worldline Approach to Black Hole Dynamics
- Untangling the merger history of massive black holes with LISA
- Absorption of mass and angular momentum by a black hole: Time-domain formalisms for gravitational perturbations, and the small-hole/slow-motion approximation
- Spin-orbit interactions in black-hole binaries
- Tidal deformation of a slowly rotating material body. External metric
- Nonrotating black hole in a post-Newtonian tidal environment
- Circular orbits of corotating binary black holes: comparison between analytical and numerical results
- Tidal deformation of a slowly rotating black hole
- Geometry and dynamics of a tidally deformed black hole
- Higher-order-in-spin interaction Hamiltonians for binary black holes from source terms of Kerr geometry in approximate ADM coordinates
- Tidal heating and torquing of a Kerr black hole to next-to-leading order in the tidal coupling
- A generalized Damour-Navier-Stokes equation applied to trapping horizons
- Tidal invariants for compact binaries on quasi-circular orbits
- Gravitomagnetic response of an irrotational body to an applied tidal field
- Horizon-absorption effects in coalescing black-hole binaries: An effective-one-body study of the non-spinning case
- Physics and Initial Data for Multiple Black Hole Spacetimes
- Horizon-absorbed energy flux in circularized, nonspinning black-hole binaries and its effective-one-body representation
- Relativistic Models for Binary Neutron Stars with Arbitrary Spins
- Learning about compact binary merger: the interplay between numerical relativity and gravitational-wave astronomy
- Do floating orbits in extreme mass ratio binary black holes exist?
- The collision of two slowly rotating, initially non boosted, black holes in the close limit
- Last orbits of binary black holes
- Persistence of post-Newtonian amplitude structure in binary black hole mergers