Survey of spinning test particle orbits in Kerr spacetime

Michael D. Hartl
Phys. Rev. D 67, 104023 – Published 28 May 2003
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Abstract

We investigate the dynamics of the Papapetrou equations in Kerr spacetime. These equations provide a model for the motion of a relativistic spinning test particle orbiting a rotating (Kerr) black hole. We perform a thorough parameter space search for signs of chaotic dynamics by calculating the Lyapunov exponents for a large variety of initial conditions. We find that the Papapetrou equations admit many chaotic solutions, with the strongest chaos occurring in the case of eccentric orbits with pericenters close to the limit of stability against plunge into a maximally spinning Kerr black hole. Despite the presence of these chaotic solutions, we show that physically realistic solutions to the Papapetrou equations are not chaotic; in all cases, the chaotic solutions either do not correspond to realistic astrophysical systems, or involve a breakdown of the test-particle approximation leading to the Papapetrou equations (or both). As a result, the gravitational radiation from bodies spiraling into much more massive black holes (as detectable, for example, by LISA, the Laser Interferometer Space Antenna) should not exhibit any signs of chaos.

  • Received 17 February 2003

DOI:https://doi.org/10.1103/PhysRevD.67.104023

©2003 American Physical Society

Authors & Affiliations

Michael D. Hartl*

  • Department of Physics, California Institute of Technology, Pasadena, California 91125

  • *Electronic address: mhartl@tapir.caltech.edu

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Issue

Vol. 67, Iss. 10 — 15 May 2003

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