English

The evolution of large cavities and disc eccentricity in circumbinary discs

Earth and Planetary Astrophysics 2021-07-29 v2

Abstract

We study the mutual evolution of the orbital properties of high mass ratio, circular, co-planar binaries and their surrounding discs, using 3D Smoothed Particle Hydrodynamics simulations. We investigate the evolution of binary and disc eccentricity, cavity structure and the formation of orbiting azimuthal over-dense features in the disc. Even with circular initial conditions, all discs with mass ratios q>0.05q>0.05 develop eccentricity. We find that disc eccentricity grows abruptly after a relatively long time-scale (400700\sim 400\textrm{--}700 binary orbits), and is associated with a very small increase in the binary eccentricity. When disc eccentricity grows, the cavity semi-major axis reaches values acav3.5abina_{\rm cav}\approx 3.5\, a_{\rm bin}. We also find that the disc eccentricity correlates linearly with the cavity size. Viscosity and orbit crossing, appear to be responsible for halting the disc eccentricity growth -- eccentricity at the cavity edge in the range ecav0.050.35e_{\rm cav}\sim 0.05\textrm{--} 0.35. Our analysis shows that the current theoretical framework cannot fully explain the origin of these evolutionary features when the binary is almost circular (ebin0.01e_{\rm bin}\lesssim 0.01); we speculate about alternative explanations. As previously observed, we find that the disc develops an azimuthal over-dense feature in Keplerian motion at the edge of the cavity. A low contrast over-density still co-moves with the flow after 2000 binary orbits; such an over-density can in principle cause significant dust trapping, with important consequences for protoplanetary disc observations.

Keywords

Cite

@article{arxiv.2009.10738,
  title  = {The evolution of large cavities and disc eccentricity in circumbinary discs},
  author = {Enrico Ragusa and Richard Alexander and Josh Calcino and Kieran Hirsh and Daniel J. Price},
  journal= {arXiv preprint arXiv:2009.10738},
  year   = {2021}
}

Comments

20 pages, 17 figures, 1 table, accepted for publication in MNRAS

R2 v1 2026-06-23T18:43:39.741Z