English

Shape of a slowly rotating star measured by asteroseismology

Solar and Stellar Astrophysics 2016-11-22 v1

Abstract

Stars are not perfectly spherically symmetric. They are deformed by rotation and magnetic fields. Until now, the study of stellar shapes has only been possible with optical interferometry for a few of the fastest-rotating nearby stars. We report an asteroseismic measurement, with much better precision than interferometry, of the asphericity of an A-type star with a rotation period of 100 days. Using the fact that different modes of oscillation probe different stellar latitudes, we infer a tiny but significant flattening of the star's shape of ΔR/R=(1.8±0.6)×106\Delta R/R = (1.8 \pm 0.6) \times 10^{-6}. For a stellar radius RR that is 2.242.24 times the solar radius, the difference in radius between the equator and the poles is ΔR=3±1\Delta R = 3 \pm 1 km. Because the observed ΔR/R\Delta R/R is only one-third of the expected rotational oblateness, we conjecture the presence of a weak magnetic field on a star that does not have an extended convective envelope. This calls to question the origin of the magnetic field.

Keywords

Cite

@article{arxiv.1611.06435,
  title  = {Shape of a slowly rotating star measured by asteroseismology},
  author = {Laurent Gizon and Takashi Sekii and Masao Takata and Donald W. Kurtz and Hiromoto Shibahashi and Michael Bazot and Othman Benomar and Aaron C. Birch and Katepalli R. Sreenivasan},
  journal= {arXiv preprint arXiv:1611.06435},
  year   = {2016}
}

Comments

15 pages, 2 tables, 3 figures