On the effects of photoionization feedback on second-generation star formation in globular clusters of different masses

Author:

Yaghoobi A12,Rosdahl J2ORCID,Calura F3ORCID,Ataiee S1ORCID

Affiliation:

1. Department of Physics, Faculty of Sciences, Ferdowsi University of Mashhad , Mashhad 91775-1436, Iran

2. Univ Lyon, Univ Lyon1, Ens de Lyon, CNRS , Centre de Recherche Astrophysique de Lyon UMR5574, F-69230 Saint-Genis-Laval, France

3. INAF - OAS, Osservatorio di Astrofisica e Scienza dello Spazio di Bologna , via Gobetti 93/3, I-40129 Bologna, Italy

Abstract

Abstract We simulate the formation of second-generation stars in young clusters with masses of 105 and 106 M⊙ within 30–100 Myr after the formation of clusters. We assume the clusters move through a uniform interstellar medium with gas densities of 10−24 and 10−23 g cm−3 and consider the stellar winds from asymptotic gian branch (AGB) stars, gas accretion onto the cluster, ram pressure, star formation, and photoionization feedback of our stellar systems including binary stars. We find that second generation (SG) stars can be formed only within the 106 M⊙ cluster in the high-density simulation, where the cluster can accrete sufficient pristine gas from their surrounding medium, leading to efficient cooling required for the ignition of SG formation and sufficient dilution of the AGB ejecta. Hence, our results indicate that a denser environment is another requirement for the AGB scenario to explain the presence of multiple populations in globular clusters. On the other hand, the ionizing feedback becomes effective in heating the gas in our low-density simulations. As a result, the clusters cannot accumulate a considerable amount of pristine gas at their center. The gas mass within the clusters in these simulations is similar to that in young massive clusters (YMCs). Hence, our studies can provide a possible reason for the lack of gas, star formation, and SG stars in YMCs. Our results indicate that the ionizing stellar feedback is not a severe problem for SG formation; rather, it can help the AGB scenario to account for some observables.

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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