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Primordial binary evolution and blue stragglers

Published online by Cambridge University Press:  18 January 2010

Xuefei Chen
Affiliation:
National Astronomical Observatories/Yunnan Observatory, Chinese Aacademy of Sciences, Kunming, 650011, P. R. China email: xuefeichen717@hotmail.com, zhanwenhan@hotmail.com
Zhanwen Han
Affiliation:
National Astronomical Observatories/Yunnan Observatory, Chinese Aacademy of Sciences, Kunming, 650011, P. R. China email: xuefeichen717@hotmail.com, zhanwenhan@hotmail.com
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Abstract

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Blue stragglers have been found in all populations. They are important in both stellar evolution and stellar population synthesis. Much evidence shows that blue stragglers are relevant to primordial binaries. Here, we summarize the links between binary evolution and blue stragglers, describe the characteristics of blue stragglers originating from different binary evolutionary channels and show their consequences for binary population synthesis, such as for the integrated spectral-energy distribution, the colour–magnitude diagram, their specific frequency, and their influence on colours, etc.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2010

References

Andronov, N., Pinsonneault, M. H., & Terndrup, D. M. 2006, ApJ, 646, 1160CrossRefGoogle Scholar
Carraro, G., 2008, A&A, 482, 777Google Scholar
Chen, X. & Han, Z. 2004, MNRAS, 355, 1182CrossRefGoogle Scholar
Chen, X. & Han, Z. 2008a, MNRAS, 387, 1416Google Scholar
Chen, X. & Han, Z. 2008b, MNRAS, 384, 1263CrossRefGoogle Scholar
Chen, X. & Han, Z. 2009, MNRAS, 395, 1822CrossRefGoogle Scholar
Dalessandro, E., Lanzoni, B., Ferraro, F. R., Rood, R. T., Milone, A., Piotto, G., & Valenti, E. 2008, ApJ, 677, 1069Google Scholar
Eggleton, P. P. 2000, NewAR, 44, 111CrossRefGoogle Scholar
Han, Z., Eggleton, P. P., Podsiadlowski, P., Tout, C. A., & Webbink, R. F. 2001, ASP Conf. Ser., 229, 205Google Scholar
Han, Z., Podsiadlowski, P., Maxted, P. F. L., Marsh, T. R., & Ivanova, N. 2002, MNRAS, 336, 449Google Scholar
Hjellming, M. S. & Webbink, R. F. 1987, ApJ, 318, 794Google Scholar
Lanzoni, B., Dalessandro, E., Perina, S., Ferraro, F. R., Rood, R. T., & Sollima, A. 2007, ApJ, 670, 1065CrossRefGoogle Scholar
Li, L., Han, Z., & Zhang, F. 2005, MNRAS, 360, 272Google Scholar
Lombardi, J. C. Jr., Rasio, F. A., & Shapiro, S. L. 1996, ApJ, 468, 797CrossRefGoogle Scholar
Mateo, M., Harris, H., Nemec, J., & Olszewski, E. 1990, AJ, 100, 469Google Scholar
Pols, O. R., Izzard, R. G., Lugaro, M., & de Mink, S. E. 2008, IAU Symp., 252, 383CrossRefGoogle Scholar
Pols, O. R. & Marnus, M. 1994, A&A, 288, 475Google Scholar
Sandquist, E. L. & Shetrone, M. D. 2003, AJ, 125, 2187Google Scholar
Sills, A. & Lombardi, J. C. Jr. 1997, ApJ, 105, 1081Google Scholar
Sills, A., et al. 2001, ApJ, 105, 1081Google Scholar
Sollima, A., Lanzoni, B., Beccari, G., Ferraro, F. R., & Fusi Pecci, F. 2008, A&A, 481, 701Google Scholar
Stryker, L. L. 1993, PASP, 105, 1081CrossRefGoogle Scholar
Webbink, R. F. 1976, ApJ, 209, 829Google Scholar
Webbink, R. F. 1988, in: Mikolajewska, J., Friedjung, M., Kenyon, S. J., & Viotti, R., The Symbiotic Phenomenon, p. 311 (Dordrecht: Kluwer)CrossRefGoogle Scholar