English

Planet Engulfment Signatures in Twin Stars

Solar and Stellar Astrophysics 2023-02-09 v2 Earth and Planetary Astrophysics

Abstract

Planet engulfment can be inferred from enhancement of refractory elements in the photosphere of the engulfing star following accretion of rocky planetary material. Such refractory enrichments are subject to stellar interior mixing processes, namely thermohaline mixing induced by an inverse mean-molecular-weight gradient between the convective envelope and radiative core. Using MESA stellar models, we quantified the strength and duration of engulfment signatures following planet engulfment. We found that thermohaline mixing dominates during the first \sim5-45 Myr post-engulfment, weakening signatures by a factor of \sim2 before giving way to depletion via gravitational settling on longer timescales. Solar metallicity stars in the 0.5-1.2 MM_{\odot} mass range have observable signature timescales of \sim1 Myr-8 Gyr, depending on the engulfing star mass and amount of material engulfed. Early type stars exhibit larger initial refractory enhancements but more rapid depletion. Solar-like stars (MM = 0.9-1.1 MM_{\odot}) maintain observable signatures (>>0.05 dex) over timescales of \sim20 Myr-1.7 Gyr for nominal 10 MM_{\oplus} engulfment events, with longer-lived signatures occurring for low-metallicity and/or hotter stars (1 MM_{\odot}, \sim2-3 Gyr). Engulfment events occurring well after the zero-age main sequence produce larger signals due to suppression of thermohaline mixing by gravitational settling of helium (1 MM_{\odot}, \sim1.5 Gyr). These results indicate that it may be difficult to observe engulfment signatures in solar-like stars that are several Gyr old.

Keywords

Cite

@article{arxiv.2210.11679,
  title  = {Planet Engulfment Signatures in Twin Stars},
  author = {Aida Behmard and Jason Sevilla and Jim Fuller},
  journal= {arXiv preprint arXiv:2210.11679},
  year   = {2023}
}

Comments

13 pages, 8 figures; accepted for publication in MNRAS