English

Stellar Evolution in Real Time: Models Consistent with Direct Observation of Thermal Pulse in T Ursae Minoris

Solar and Stellar Astrophysics 2019-07-10 v2

Abstract

Most aspects of stellar evolution proceed far too slowly to be directly observable in a single star on human timescales. The thermally pulsing asymptotic giant branch is one exception. The combination of state-of-the-art modelling techniques with data assimilated from observations collected by amateur astronomers over many decades provide, for the first time, the opportunity to identify a star occupying precisely this evolutionary stage. In this study, we show that the rapid pulsation period change and associated reduction in radius in the bright, northern variable star T Ursae Minoris are caused by the recent onset of a thermal pulse. We demonstrate that T UMi transitioned into a double-mode pulsation state, and we exploit its asteroseismic features to constrain its fundamental stellar parameters. We use evolutionary models from MESA and linear pulsation models from GYRE to track simultaneously the structural and oscillatory evolution of models with varying mass. We apply a sophisticated iterative sampling scheme to achieve time resolution 10\le10 years at the onset of the relevant thermal pulses. We report initial mass of 2.0±0.15M2.0\pm0.15\, \mathrm{M}_\odot and an age of 1.17±0.211.17 \pm 0.21 Gyr for T UMi. This is the most precise mass and age determination for a single asymptotic giant branch star ever obtained. The ultimate test of our models will be the continued observation of its evolution in real time: we predict that the pulsation periods in T UMi will continue shortening for a few decades before they rebound and begin to lengthen again, as the star expands in radius.

Keywords

Cite

@article{arxiv.1905.00597,
  title  = {Stellar Evolution in Real Time: Models Consistent with Direct Observation of Thermal Pulse in T Ursae Minoris},
  author = {László Molnár and Meridith Joyce and László Kiss},
  journal= {arXiv preprint arXiv:1905.00597},
  year   = {2019}
}

Comments

18 pages, 14 figures, plus 8 pages appendix. v1: submitted version, v2: accepted to the Astrophysical Journal. Animation showing the pulsation frequency shifting over time available at this link: https://www.youtube.com/watch?v=115DQJM_KBA