English

Highly eccentric inspirals into a black hole

General Relativity and Quantum Cosmology 2016-03-22 v2

Abstract

We model the inspiral of a compact stellar-mass object into a massive nonrotating black hole including all dissipative and conservative first-order-in-the-mass-ratio effects on the orbital motion. The techniques we develop allow inspirals with initial eccentricities as high as e0.8e\sim0.8 and initial separations as large as p50p\sim 50 to be evolved through many thousands of orbits up to the onset of the plunge into the black hole. The inspiral is computed using an osculating elements scheme driven by a hybridized self-force model, which combines Lorenz-gauge self-force results with highly accurate flux data from a Regge-Wheeler-Zerilli code. The high accuracy of our hybrid self-force model allows the orbital phase of the inspirals to be tracked to within 0.1\sim0.1 radians or better. The difference between self-force models and inspirals computed in the radiative approximation is quantified.

Keywords

Cite

@article{arxiv.1511.01498,
  title  = {Highly eccentric inspirals into a black hole},
  author = {Thomas Osburn and Niels Warburton and Charles R. Evans},
  journal= {arXiv preprint arXiv:1511.01498},
  year   = {2016}
}

Comments

Updated to reflect published version

R2 v1 2026-06-22T11:37:48.108Z