ALMAGAL III. Compact source catalog: Fragmentation statistics and physical evolution of the core population
Abstract
The mechanisms behind the fragmentation of high-mass dense clumps into compact star-forming cores are fundamental topics in current astrophysical research. The ALMAGAL survey provides the opportunity to study this process at an unprecedented level of detail and statistical significance, featuring high-angular resolution mm ALMA observations of massive dense clumps at various Galactic locations. These clumps cover a wide range of distances, masses, surface densities, and evolutionary stages. Here, we present the catalog of compact sources obtained with the CuTEx algorithm from continuum images of the full ALMAGAL clump sample combining ACA-m and m ALMA arrays, reaching a uniform high median spatial resolution of au. We discuss the fragmentation properties and the estimated physical parameters of the core population. The ALMAGAL compact source catalog includes cores detected in clumps ( of the total), with a number of cores per clump between and (median of ). The estimated core diameters are mostly within au (median of au). We obtained core masses from to . We evaluated the variation in the core mass function (CMF) with evolution as traced by the clump , finding a clear, robust shift and change in slope among CMFs within subsamples at different stages. This finding suggests that the CMF shape is not constant throughout the star formation process, but rather it builds (and flattens) with evolution, with higher core masses reached at later stages. We found that all cores within a clump grow in mass on average with evolution, and the number of cores increases with the core masses. Our results favor a clump-fed scenario for high-mass star formation, in which cores form as low-mass seeds, and then gain mass while further fragmentation occurs in the clump.
Keywords
Cite
@article{arxiv.2503.05663,
title = {ALMAGAL III. Compact source catalog: Fragmentation statistics and physical evolution of the core population},
author = {A. Coletta and S. Molinari and E. Schisano and A. Traficante and D. Elia and M. Benedettini and C. Mininni and J. D. Soler and Á. Sánchez-Monge and P. Schilke and C. Battersby and G. A. Fuller and H. Beuther and Q. Zhang and M. T. Beltrán and B. Jones and R. S. Klessen and S. Walch and F. Fontani and A. Avison and C. L. Brogan and S. D. Clarke and P. Hatchfield and P. Hennebelle and P. T. Ho and T. R. Hunter and K. G. Johnston and P. D. Klaassen and P. M. Koch and R. Kuiper and D. C. Lis and T. Liu and S. L. Lumsden and Y. Maruccia and T. Möller and L. Moscadelli and A. Nucara and A. J. Rigby and K. L. J. Rygl and P. Sanhueza and F. van der Tak and M. R. A. Wells and F. Wyrowski and F. De Angelis and S. Liu and A. Ahmadi and L. Bronfman and S. -Y. Liu and Y. -N. Su and Y. Tang and L. Testi and H. Zinnecker},
journal= {arXiv preprint arXiv:2503.05663},
year = {2025}
}
Comments
35 pages, 63 figures, accepted for publication in the Astronomy & Astrophysics journal, abstract adapted from original