Differential interferometry of the rapid rotator Regulus
Abstract
We analyse interferometric data obtained for Regulus with AMBER (Astronomical Multi- BEam combineR) at high spectral resolution () across the Br spectral line. The study of the photocentre displacement allows us to constrain a large number of stellar parameters -- equatorial radius , equatorial velocity , inclination , rotation-axis position angle , and flattening -- with an estimation of gravity-darkening coefficient using previously published theoretical results. We use the Simulation Code of Interferometric-observations for ROtators and CirCumstellar Objects (SCIROCCO), a semi-analytical algorithm dedicated to fast rotators. We chose Regulus because it is a very well-known edge-on star, for which an alternative approach is needed to check the previously published results. Our analysis showed that a significant degeneracy of solution is present. By confronting the results obtained by differential interferometry with those obtained by conventional long-base interferometry, we obtain similar results (within the uncertainties), thereby validating our approach, where and are found separately. From the photocentre displacement, we can independently deduce . We use two minimization methods to restrict observed stellar parameters via a fast rotator model: a non-stochastic method ( fit) and a stochastic one (Markov Chain Monte Carlo method), in order to check whether the correct global minimum is achieved particularly with respect to the degeneracies of the gravity darkening parameter , where we demonstrate, using a quantitative analysis of parameters, that the estimate of is easier for stars with an inclination angle of around .
Keywords
Cite
@article{arxiv.1808.01399,
title = {Differential interferometry of the rapid rotator Regulus},
author = {M. Hadjara and R. G. Petrov and S. Jankov and P. Cruzalèbes and A. Spang and S. Lagarde},
journal= {arXiv preprint arXiv:1808.01399},
year = {2018}
}
Comments
16 pages, 11 figures, MNRAS article