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The Eccentric Behavior of Inspiraling Compact Binaries

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arxiv 1810.03521 v3 pith:LGOSH5CE submitted 2018-10-08 gr-qc

classification gr-qc
keywords systemsbinaryeccentricityorbitalparametersapproximationaveragedcapture
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abstract

Eccentricity of binary systems is not a gauge invariant quantity, but has an important impact on the observed gravitational wave signal of such systems, generating power in all possible harmonics of the orbital period. We here clarify the possible discrepancies between different eccentricity parameters used to describe the orbital dynamics of binary systems across different approximations, specifically the post-Newtonian approximation, the self-force approximation, and numerical relativity. To this end, we highlight disparities between the typically used orbit averaged method of evolving binary systems under radiation reaction, and more direct techniques of solving the two-body problem in post-Newtonian theory. We show, both numerically and analytically, that the orbit averaged method breaks down in the late inspiral, failing to capture a strong secular growth in the Keplerian eccentricity parameter and producing a orbital de-phasing relative to direct integration of the two-body equations of motion. We show that the secular growth and de-phasing affect the observed gravitational wave signal, which could bias how accurately we may recover parameters for systems with signal-to-noise ratios $\gtrsim 100$. We further develop a frequency domain post-adiabatic waveform model to capture these effects, and study the precision to which we may estimate parameters with this model through a Fisher information matrix analysis.

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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. Tracing the evolution of eccentric precessing binary black holes: a hybrid approach

    astro-ph.HE 2025-05 conditional novelty 7.0 of 10

    A new public hybrid post-Newtonian code computes spin tilts at infinity for eccentric precessing binary black holes, and the circular-orbit transition frequency remains accurate to the target level.

  2. Non-adiabatic dynamics of eccentric black-hole binaries in post-Newtonian theory

    gr-qc 2025-02 unverdicted novelty 7.0 of 10

    New non-orbit-averaged 2.5PN equations for eccentric non-spinning black-hole binaries derived via energy-momentum mappings, showing Peters 1964 orbit-averaged equations break at first pericenter.

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