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VLTI-GRAVITY Measurements of Cool Evolved Stars I. Variable Photosphere and Extended Atmosphere of the Mira Star R PegContext. Dynamic model atmospheres of Mira stars predict variabilities in the photospheric radius and in atmospheric molecular layers which are not yet strongly constrained by observations. Aim. Here we measure the variability of the oxygen-rich Mira star R Peg in near-continuum and molecular bands. Methods. We used near-infrared K-band spectro-interferometry with a spectral resolution of about 4000 obtained at four epochs between post-maximum and minimum visual phases employing the newly available GRAVITY beam combiner at the Very Large Telescope Interferometer (VLTI). Results. Our observations show a continuum radius that is anti-correlated with the visual lightcurve. Uniform disc (UD) angular diameters at a near-continuum wavelength of 2.24 m are steadily increasing with values of 8.7 0.1 mas, 9.4 0.1 mas, 9.8 0.1 mas, and 9.9 0.1 mas at visual phases of 0.15, 0.36, 0.45, 0.53, respectively. UD diameters at a bandpass around 2.05 m, dominated by water vapour, follow the near-continuum variability at larger UD diameters between 10.7 mas and 11.7 mas. UD diameters at the CO 2-0 bandhead, instead, are correlated with the visual lightcurve and anti-correlated with the near-continuum UD diameters, with values between 12.3 mas and 11.7 mas. Conclusions. The observed anti-correlation between continuum radius and visual lightcurve is consistent with an earlier study of the oxygen-rich Mira S Lac, and with recent 1D CODEX dynamic model atmosphere predictions. The amplitude of the variation is comparable to the earlier observations of S Lac, and smaller than predicted by CODEX models. The wavelength-dependent visibility variations at our epochs can be reproduced by a set of CODEX models at model phases between 0.3 and 0.6. The anti-correlation of water vapour and CO contributions at our epochs suggests that these molecules undergo different processes in the extended atmosphere along the stellar cycle. The newly available GRAVITY instrument is suited to conducting longer time series observations, which are needed to provide strong constraints on the model-predicted intra- and inter-cycle variability.
Document ID
20180004724
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Wittkowski, M.
(European Southern Observatory Munich, Germany)
Rau, G.
(Catholic Univ. of America Washington, DC, United States)
Chiavassa, A.
(Observatoire de la Cote d'Azur Nice, France)
Höfner, S.
(Uppsala University Uppsala, Sweden)
Scholz, M.
(Universität Heidelberg Heidelberg, Germany)
Wood, P. R.
(Australian National University Canberra, Australia)
de Wit, W. J.
(European Southern Observatory Santiago, Chile)
Eisenhauer, F.
(Max-Planck-Inst. fuer Extraterrestrische Physik Garching, Germany)
Haubois, X.
(European Southern Observatory Santiago, Chile)
Paumard, T.
(Observatoire de Paris Paris, France)
Date Acquired
August 28, 2018
Publication Date
June 1, 2018
Publication Information
Publication: Astronomy & Astrophysics
Publisher: EDP Sciences
Volume: 613
ISSN: 0004-6361
e-ISSN: 1432-0746
Subject Category
Astrophysics
Report/Patent Number
GSFC-E-DAA-TN58576
ISSN: 0004-6361
E-ISSN: 1432-0746
Report Number: GSFC-E-DAA-TN58576
Funding Number(s)
CONTRACT_GRANT: 80GSFC17M0002
Distribution Limits
Public
Copyright
Other
Keywords
photospheric radius
Mira stars
Very Large Telescope Interferometer (VLTI)

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