Using Full Information When Computing Modes of Post-Newtonian Waveforms From Inspiralling Compact Binaries in Circular Orbit
arXiv:0710.0614 · doi:10.1103/PhysRevD.77.044016
Abstract
The increasing sophistication and accuracy of numerical simulations of compact binaries (especially binary black holes) presents the opportunity to test the regime in which post-Newtonian (PN) predictions for the emitted gravitational waves are accurate. In order to confront numerical results with those of post-Newtonian theory, it is convenient to compare multipolar decompositions of the two waveforms. It is pointed out here that the individual modes can be computed to higher post-Newtonian order by examining the radiative multipole moments of the system, rather than by decomposing the 2.5PN polarization waveforms. In particular, the dominant (l = 2, m = 2) mode can be computed to 3PN order. Individual modes are computed to as high a post-Newtonian order as possible given previous post-Newtonian results.
15 pages
References in corpus (3)
Cited by in corpus (6)
- Accurate Effective-One-Body waveforms of inspiralling and coalescing black-hole binaries
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- Eccentric binary black-hole mergers: The transition from inspiral to plunge in general relativity
- Multipolar analysis of spinning binaries
- Introductory lectures on the Effective One Body formalism
- Ineffectiveness of Padé resummation techniques in post-Newtonian approximations