English

The Common Envelope Evolution Outcome -- A Case Study on Hot Subdwarf B Stars

Solar and Stellar Astrophysics 2022-07-18 v3 High Energy Astrophysical Phenomena

Abstract

Common envelope evolution (CEE) physics plays a fundamental role in the formation of binary systems, such as mergering stellar gravitational wave sources, pulsar binaries and type Ia supernovae. A precisely constrained CEE has become more important in the age of large surveys and gravitational wave detectors. We use an adiabatic mass loss model to explore how the total energy of the donor changes as a function of the remnant mass. This provides a more self-consistent way to calculate the binding energy of the donor. For comparison, we also calculate the binding energy through integrating the total energy from the core to the surface. The outcome of CEE is constrained by total energy conservation at the point at which both component's radii shrink back within their Roche lobes. We apply our results to 142 hot subdwarf binaries. For shorter orbital period sdBs, the binding energy is highly consistent. For longer orbital period sdBs in our samples, the binding energy can differ by up to a factor of 2. The CE efficiency parameter βCE\beta_\mathrm{CE} becomes smaller than αCE\alpha_\mathrm{CE} for the final orbital period log10Porb/d>0.5\log_{10} P_{\mathrm{orb}}/\mathrm{d} > -0.5. We also find the mass ratios log10q\log_{10} q and CE efficiency parameters log10αCE\log_{10} \alpha_{\mathrm{CE}} and log10βCE\log_{10} \beta_{\mathrm{CE}} linearly correlate in sdBs, similarly to De Marco et al. (2010) for post-AGB binaries.

Keywords

Cite

@article{arxiv.2205.14256,
  title  = {The Common Envelope Evolution Outcome -- A Case Study on Hot Subdwarf B Stars},
  author = {Hongwei Ge and Christopher A Tout and Xuefei Chen and Matthias U Kruckow and Hailiang Chen and Dengkai Jiang and Zhenwei Li and Zhengwei Liu and Zhanwen Han},
  journal= {arXiv preprint arXiv:2205.14256},
  year   = {2022}
}

Comments

18 pages, 17 figures, 3 tables, Accepted for publication in ApJ, minor updates for the final proof

R2 v1 2026-06-24T11:31:31.493Z