Coalescing binary systems of compact objects to (post)5/2-Newtonian order. V. Spin effects

Lawrence E. Kidder
Phys. Rev. D 52, 821 – Published 15 July 1995
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Abstract

We examine the effects of spin-orbit and spin-spin couplings on the inspiral of a coalescing binary system of spinning compact objects and on the gravitational radiation emitted therefrom. Using a formalism developed by Blanchet, Damour, and Iyer we calculate the contributions due to the spins of the bodies to the symmetric trace-free radiative multipole moments which are used to calculate the waveform, energy loss, and angular momentum loss from the inspiraling binary. Using equations of motion which include terms due to spin-orbit and spin-spin couplings we evolve the orbit of a coalescing binary and use the orbit to calculate the emitted gravitational waveform. We find the spins of the bodies affect the waveform in several ways: (1) the spin terms contribute to the orbital decay of the binary, and thus to the accumulated phase of the gravitational waveform; (2) the spins cause the orbital plane to precess, which changes the orientation of the orbital plane with respect to an observer, thus causing the shape of the waveform to be modulated; (3) the spins contribute directly to the amplitude of the waveform. We discuss the size and importance of spin effects for the case of two coalescing neutron stars, and for the case of a neutron star orbiting a rapidly rotating 10M black hole.

  • Received 19 January 1995

DOI:https://doi.org/10.1103/PhysRevD.52.821

©1995 American Physical Society

Authors & Affiliations

Lawrence E. Kidder

  • McDonnell Center for the Space Sciences, Department of Physics, Washington University, St. Louis, Missouri 63130

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Vol. 52, Iss. 2 — 15 July 1995

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