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Spectroscopic detection of Altair's non-radial pulsations

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arxiv 2209.09559 v1 pith:WQ5ZOLOV submitted 2022-09-20 astro-ph.SR

classification astro-ph.SR
keywords altairstarwavesobservedstarsbrightestgravito-inertialknown
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abstract

Context: Rapid rotation is a common feature of early-type stars but which remains a challenge for the models. The understanding of its effect on stellar evolution is however imperative to interpret the observed properties of numerous stars. Aims: We wish to bring more observational constraints on the properties of fast rotating stars, especially on their oscillation modes. Methods: We focus on the nearby star Altair which is known as a very rapidly rotating star with an equatorial velocity estimated recently at 313 km/s. We observed this star with the high-resolution spectropolarimeter Neo-Narval during six nights, with one night of interruption, in September 2020. Results: We detect significant line profile variations on the mean line profile of the spectra. Their time-frequency analysis shows that these variations are induced by gravito-inertial waves propagating at Altair's surface with azimuthal wavenumbers of order $m=10-15$. With a preliminary computation of the eigenspectrum using the most recent concordance model of Altair we can give a first modelling of the observed waves. Conclusions: Altair was known as the brightest $\delta$ Scuti star. We now see that it is the brightest hybrid oscillating star with excited gravito-inertial waves and acoustic waves. Clearly, more observations and more advanced models are needed to explain the observations in greater details

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Numerical simulations of oscillations for axisymmetric solar backgrounds with differential rotation and gravity

    astro-ph.SR 2025-08 accept novelty 6.0 of 10

    An axisymmetric HDG solver for stellar oscillation equations with gravity and differential rotation is validated by matching observed solar mode-splitting coefficients.

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