Fast core rotation in red-giant stars revealed by gravity-dominated mixed modes
Abstract
When the core hydrogen is exhausted during stellar evolution, the central region of a star contracts and the outer envelope expands and cools, giving rise to a red giant, in which convection occupies a large fraction of the star. Conservation of angular momentum requires that the cores of these stars rotate faster than their envelopes, and indirect evidence supports this. Information about the angular momentum distribution is inaccessible to direct observations, but it can be extracted from the effect of rotation on oscillation modes that probe the stellar interior. Here, we report the detection of non-rigid rotation in the interiors of red-giant stars by exploiting the rotational frequency splitting of recently detected mixed modes. We demonstrate an increasing rotation rate from the surface of the star to the stellar core. Comparing with theoretical stellar models, we conclude that the core must rotate at least ten times faster than the surface. This observational result confirms the theoretical prediction of a steep gradient in the rotation profile towards the deep stellar interior.
Keywords
Cite
@article{arxiv.1112.2825,
title = {Fast core rotation in red-giant stars revealed by gravity-dominated mixed modes},
author = {Paul G. Beck and Josefina Montalban and Thomas Kallinger and Joris De Ridder and Conny Aerts and Rafael A. García and Saskia Hekker and Marc-Antoine Dupret and Benoit Mosser and Patrick Eggenberger and Dennis Stello and Yvonne Elsworth and Søren Frandsen and Fabien Carrier and Michel Hillen and Michael Gruberbauer and Jørgen Christensen-Dalsgaard and Andrea Miglio and Marica Valentini and Timothy R. Bedding and Hans Kjeldsen and Forrest R. Girouard and Jennifer R. Hall and Khadeejah A. Ibrahim},
journal= {arXiv preprint arXiv:1112.2825},
year = {2015}
}
Comments
to appear as a Letter to Nature