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arXiv · astro-ph/0308431

The Red Giant Branch Luminosity Function Bump

Abstract

We present observational estimates of the magnitude difference between the luminosity function RGB bump and the HB (Delta(bump-zahb)), and of star counts in the bump region (R_bump), for a sample of 54 Galactic globular clusters (GCs) observed by the HST. The large sample of stars resolved in each cluster, and the high photometric accuracy of the data allowed us to detect the bump also in a number of metal poor clusters. To reduce the photometric uncertainties, empirical values are compared with theoretical predictions obtained from a set of updated canonical stellar evolution models which have been transformed directly into the HST flight system. We found an overall qualitative agreement between theory and observations. Quantitative estimates of the confidence level are hampered by current uncertainties on the GCs metallicity scale, and by the strong dependence of Delta(bump-zahb) on the cluster metallicity. In case of the R_bump parameter, which is only weakly affected by the metallicity, we find a very good quantitative agreement between theoretical canonical models and observations. For our full cluster sample the average difference between predicted and observed R_bump values is practically negligible, and ranges from -0.002 to -0.028, depending on the employed metallicity scale. The observed dispersion around these values is entirely consistent with the observational errors on R_bump. As a comparison, the value of R_bump predicted by theory in case of spurious bump detections would be \~0.10 smaller than the observed ones. We have also tested the influence on the predicted Delta(bump-zahb) and R_bump values of an He-enriched component in the cluster stellar population. We find that the predicted Delta(bump-zahb) and R_bump values are only marginally affected.

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M. Riello, S. Cassisi, G. Piotto, A. Recio-Blanco, F. De Angeli, M. Salaris, A. Pietrinferni, G. Bono, M. Zoccali. 2003-08-25. The Red Giant Branch Luminosity Function Bump. https://doi.org/10.1051/0004-6361%3A20031272

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