English

Eccentric Binaries Accreting from Thin Disks: Orbital Evolution

Astrophysics of Galaxies 2025-12-16 v1 Earth and Planetary Astrophysics High Energy Astrophysical Phenomena Solar and Stellar Astrophysics

Abstract

Circumbinary disks crucially affect the orbital and electromagnetic properties of binary systems across the universe, from stars in our galactic neighborhood to supermassive black hole binaries formed as the result of tumultuous galactic mergers. Previous simulations have focused nearly exclusively on thick accretion disks, appropriate for studying stellar binaries, and have found encouraging agreement with observations thereof. We present herein the first systematic study of eccentric binary systems accreting from thin disks, focusing on binary orbital evolution. Our main results are that (1) thinner disk not only drive binaries to rapidly inspiral, but also excite binary eccentricities at much higher rates; (2) while thick disks may drive binaries to a stable fixed point of e0.425e\approx0.425, thinner disks pump binary eccentricities to e0.6e\gtrsim0.6; (3) the range of near-zero eccentricities that are damped towards zero depends on both disk thickness and viscosity, thinner disks and those with α\alpha viscosities driving binaries towards circularity over a much narrower range of eccentricities. These differences follow largely from the effects of pressure support on accretion streams and shocks within the inner regions of the accretion flow. Our results suggest that accreting binary black holes should have high eccentricities well into the frequency range probed by pulsar timing arrays and space-based gravitational wave interferometers, affecting the spectrum and isotropy of the gravitational wave background. Our results also suggest that circumbinary disks may play an important role in shaping the orbits of close binary stars, but much less so those of wider binaries.

Keywords

Cite

@article{arxiv.2512.11954,
  title  = {Eccentric Binaries Accreting from Thin Disks: Orbital Evolution},
  author = {Alexander J. Dittmann and Geoffrey Ryan and Luciano Combi},
  journal= {arXiv preprint arXiv:2512.11954},
  year   = {2025}
}

Comments

20 pages, 11 figures. Comments welcome

R2 v1 2026-07-01T08:22:51.212Z