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THE RELATIVE AND ABSOLUTE AGES OF OLD GLOBULAR CLUSTERS IN THE LCDM FRAMEWORK

2015/02/28 by Michele Trenti, Paolo Padoan, Raul Jimenez +1 · 1 citation
Physics and Astronomy · #Astronomy #Astronomy and Astrophysical Research #Astrophysics #Dark matter #Dark matter halo #Galaxies: Formation, Evolution, Phenomena #Galaxy #Galaxy formation and evolution #Globular cluster #Halo #Metallicity #Milky Way #Physics #Redshift #Reionization #Star formation #Stellar, planetary, and galactic studies #astro-ph.GA

paper · pdf · doi:10.1088/2041-8205/808/2/l35

published as The Astrophysical Journal Letters. 808, L35, 2015 · ApJL accepted, minor content changes to highlight the robust predictions for GC ages; for an animated version of Fig. 1 (minihalo mergers movie) see http://www.ph.unimelb.edu.au/~mtrenti/trenti_padoan_jimenez_2015_fig1_GC_movie.gif

arxiv created 2015/07/07 · openalex publication_date 2015/07/24 · arxiv updated 2022/01/24 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

Old globular clusters (GCs) in the Milky Way have ages of about 13 Gyr, placing their formation time in the reionization epoch. We propose a novel scenario for the formation of these systems based on the merger of two or more atomic cooling halos at high redshift ( ). First-generation stars are formed as an intense burst in the center of a minihalo that grows above the threshold for hydrogen cooling (halo mass ) by undergoing a major merger within its cooling timescale (∼150 Myr). Subsequent minor mergers and sustained gas infall bring a new supply of pristine gas to the halo center, creating conditions that can trigger new episodes of star formation. The dark-matter halo around the GC is then stripped during assembly of the host-galaxy halo. Minihalo merging is efficient only in a short redshift window, set by the parameters, allowing us to make a strong prediction on the age distribution for old GCs. From cosmological simulations, we derive an average merging redshift and a narrow distribution , implying average GC age including ∼0.2 Gyr of star formation delay. Qualitatively, our scenario reproduces other general old GC properties (characteristic masses and number of objects, metallicity versus galactocentric radius anticorrelation, radial distribution), but unlike age, these generally depend on details of baryonic physics. In addition to improved age measurements, direct validation of the model at may be within reach with ultradeep gravitationally lensed observations with the James Webb Space Telescope .

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