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Gravitational waves from inspiralling compact binaries: Energy flux to third post-Newtonian order

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arxiv gr-qc/0105098 v3 pith:2CKQX2KR submitted 2001-05-26 gr-qc

classification gr-qc
keywords orderbinarycompactenergyfluxparameterquadrupoletails
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The multipolar-post-Minkowskian approach to gravitational radiation is applied to the problem of the generation of waves by the compact binary inspiral. We investigate specifically the third post-Newtonian (3PN) approximation in the total energy flux. The new results are the computation of the mass quadrupole moment of the binary to the 3PN order, and the current quadrupole and mass octupole to the 2PN order. Wave tails and tails of tails in the far zone are included up to the 3.5PN order. The recently derived 3PN equations of binary motion are used to compute the time-derivatives of the moments. We find perfect agreement to the 3.5PN order with perturbation calculations of black holes in the test-mass limit for one body. Technical inputs in our computation include a model of point particles for describing the compact objects, and the Hadamard self-field regularization. Because of a physical incompleteness of the Hadamard regularization at the 3PN order, the energy flux depends on one unknown physical parameter, which is a combination of a parameter \lambda in the equations of motion, and a new parameter \theta coming from the quadrupole moment.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Gravitational waves from a binary source in higher dimensional spacetime with compactified extra dimensions

    gr-qc 2026-08 reject novelty 4.0 of 10

    The claimed -1PN correction to the binary equations of motion is an artifact of an invalid expansion and never becomes larger than the Newtonian term, per the paper's own Eq. (97).

  2. Distinguishing scale-dependent Planck stars from renormalization group improved Schwarzschild black holes by Gravitational waves

    gr-qc 2025-06 conditional novelty 4.0 of 10

    Gravitational-wave strains from analytic-kludge EMRI models can distinguish scale-dependent Planck stars from renormalization-group improved Schwarzschild black holes, at least for the chosen orbit parameters.

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