A Periodic Table for Black Hole Orbits
arXiv:0802.0459 · doi:10.1103/PhysRevD.77.103005
Abstract
Understanding the dynamics around rotating black holes is imperative to the success of the future gravitational wave observatories. Although integrable in principle, test particle orbits in the Kerr spacetime can also be elaborate, and while they have been studied extensively, classifying their general properties has been a challenge. This is the first in a series of papers that adopts a dynamical systems approach to the study of Kerr orbits, beginning with equatorial orbits. We define a taxonomy of orbits that hinges on a correspondence between periodic orbits and rational numbers. The taxonomy defines the entire dynamics, including aperiodic motion, since every orbit is in or near the periodic set. A remarkable implication of this periodic orbit taxonomy is that the simple precessing ellipse familiar from planetary orbits is not allowed in the strong-field regime. Instead, eccentric orbits trace out precessions of multi-leaf clovers in the final stages of inspiral. Furthermore, for any black hole, there is some point in the strong-field regime past which zoom-whirl behavior becomes unavoidable. Finally, we sketch the potential application of the taxonomy to problems of astrophysical interest, in particular its utility for computationally intensive gravitational wave calculations.
42 pages, lots of figures
References in corpus (6)
- Intermediate and Extreme Mass-Ratio Inspirals -- Astrophysics, Science Applications and Detection using LISA
- Gravitational wave snapshots of generic extreme mass ratio inspirals
- Computing inspirals in Kerr in the adiabatic regime. I. The scalar case
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Cited by in corpus (6)
- Gravitational waves from scattering of stellar-mass black holes in galactic nuclei
- Zoom-Whirl Orbits in Black Hole Binaries
- How to observe a non-Kerr spacetime
- Dynamics of Black Hole Pairs I: Periodic Tables
- Dynamics of Black Hole Pairs II: Spherical Orbits and the Homoclinic Limit of Zoom-Whirliness
- Time-Varying Lense-Thirring System