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Variable Red Giants

Published online by Cambridge University Press:  20 April 2012

Franz Kerschbaum
Affiliation:
University of Vienna, Department of Astronomy, A-1180 Wien, Austria email: franz.kerschbaum@univie.ac.at
Walter Nowotny
Affiliation:
University of Vienna, Department of Astronomy, A-1180 Wien, Austria email: franz.kerschbaum@univie.ac.at
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Abstract

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The longest-known class of pulsating variable stars, namely pulsating red giants, is also the one that involves the most complex physical processes. Pulsation, mass loss, nuclear synthesis, mixing, atmospheric and circumstellar chemistry and dust formation all interrelate with one another and make both the observational studies and the modelling efforts quite challenging. The paper outlines some of the current key questions, and recommends observational strategies.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2012

References

Beck, P. G., et al. 2011, Science, 332, 205CrossRefGoogle Scholar
Bedding, T. R., et al. 2011, Nature, 471, 608CrossRefGoogle Scholar
Decin, L., et al. 2011, A&A, 534, A1Google Scholar
Eggen, O. J., 1975, ApJS, 29, 77CrossRefGoogle Scholar
Feast, M. W., 1963, MNRAS, 125, 367CrossRefGoogle Scholar
Glass, I. S. & Lloyd Evans, T., 1981, Nature, 291, 303CrossRefGoogle Scholar
Habing, H. J., 1996, A&A Rev., 7, 97Google Scholar
Habing, H. and Olofsson, H. (eds.) 2004, Asymptotic Giant Branch Stars (Berlin: Springer)CrossRefGoogle Scholar
Hevelius, J., 1662, Mercurius in Sole visus Gedani (Danzig: Simon Reiniger), p. 146Google Scholar
Hinkle, K. H., et al. 1982, ApJ, 252, 697CrossRefGoogle Scholar
Höfner, S., et al. 2003, A&A, 399, 589Google Scholar
Höfner, S., 2009, ASPCS, 414, 3Google Scholar
Huber, D., et al. 2010, ApJ, 723, 1607CrossRefGoogle Scholar
Ireland, M. J., Scholz, M., & Wood, P. R., 2011, MNRAS, in pressGoogle Scholar
Kerschbaum, F., et al. 2010, A&A, 518, L140Google Scholar
Kerschbaum, F., Lebzelter, T. and Wing, R. F. (eds.), 2011, Why galaxies care about AGB stars II: Shining examples and common inhabitants (San Francisco: ASPCS), 445Google Scholar
Kuschnig, R., Weiss, W. W., Moffat, A., & Kudelka, O., 2009, (San Francisco: ASPCS), 416, 587Google Scholar
Lebzelter, T., 2011, A&A, 530, A35Google Scholar
Lorenz, D., et al. 2011, A&A, 532, A78Google Scholar
Mattei, J. A., Menali, H. G., & Waagen, E. O. 2002, AAVSO Monograph 15, XIII + 14.Google Scholar
Mauron, N. & Huggins, P. J., 2000, A&A, 359, 707Google Scholar
Menzies, J. W., et al. 2011, MNRAS, 414, 3492CrossRefGoogle Scholar
Nowotny, W., et al. 2010, A&A, 514, 35Google Scholar
Nowotny, W., et al. 2011, A&A, 529, A129Google Scholar
Olofsson, H., et al. 2000, A&A, 353, 583Google Scholar
Olofsson, H., Eriksson, K., & Gustafsson, B. 1988, A&A, 196, L1Google Scholar
Osvalds, V. & Ristey, A. M. 1961, Publ. Leander McCormick Obs., 11, 147Google Scholar
Paladini, C., et al. 2009, A&A, 501, 1073Google Scholar
Rejkuba, M. 2004, A&A, 413, 903Google Scholar
Uttenthaler, S., et al. 2011, A&A, 531, A88Google Scholar
Whitelock, P., et al. 2006, MNRAS, 369, 751CrossRefGoogle Scholar
Whitelock, P., et al. 2009, MNRAS, 394, 795CrossRefGoogle Scholar
Wittkowski, M. et al. 2011, The Messenger, 145, 24Google Scholar
Wood, P. R. 1975, in: Fitch, W.S. (ed.), Multiple Periodic Variable Stars, IAU Coll. 29 (Dordrecht: Reidel), p. 69Google Scholar
Wood, P. R. 2010, Mem.S.A.It., 81, 883Google Scholar
Wood, P. R. & Zarro, D. M. 1981, ApJ, 247, 247CrossRefGoogle Scholar
Wood, P.R., et al. 1999, in: Le Bertre, T., Lèbre, A. and Waelkens, C. (eds.), Asymptotic Giant Branch Stars, Proc. IAU 191 (San Francisco: ASPCS), p. 151Google Scholar
Woodruff, H. C., et al. 2008, ApJ, 673, 418CrossRefGoogle Scholar
Zijlstra, A. A., et al. 2004, MNRAS, 352, 325CrossRefGoogle Scholar