Facial reconstruction

Search LJMU Research Online

Browse Repository | Browse E-Theses

Determining the dynamical age of the LMC globular cluster NGC 1835 using the 'dynamical clock': Star density profile and blue straggler stars

Giusti, C, Cadelano, M, Ferraro, FR, Lanzoni, B, Pallanca, C, Vesperini, E, Dalessandro, E and Salaris, M (2024) Determining the dynamical age of the LMC globular cluster NGC 1835 using the 'dynamical clock': Star density profile and blue straggler stars. Astronomy and Astrophysics, 687. pp. 1-10. ISSN 0004-6361

[img]
Preview
Text
Determining the dynamical age of the LMC globular cluster NGC 1835 using the dynamical clock.pdf - Published Version
Available under License Creative Commons Attribution.

Download (3MB) | Preview

Abstract

In the context of the study of the size-age relationship observed in star clusters in the Large Magellanic Cloud (LMC) and the investigation of its origin, we present the determination of the structural parameters and the dynamical age of the massive cluster NGC 1835. We used the powerful combination of optical and near-ultraviolet images acquired with the WFC3 on board the HST to construct the star density profile from resolved star counts, determining the values of the core, half-mass, and tidal radii through comparison with the King model family. The same data also allowed us to evaluate the dynamical age of the cluster by using the 'dynamical clock'. This is an empirical method that quantifies the level of the central segregation of blue stragglers stars (BSSs) within the cluster half-mass radius by means of the Arh+ parameter, which is defined as the area enclosed between the cumulative radial distribution of BSSs and that of a reference (lighter) population. The results confirm that NGC 1835 is a very compact cluster with a core radius of only 0.84 pc. The estimated value of Arh+ (0.30 ± 0.04) is the largest measured so far in the LMC clusters, providing evidence of a highly dynamically evolved stellar system. NGC 1835 fits nicely into the correlation between Arh+ and the central relaxation time and in the anti-correlation between Arh+ and the core radius defined by the Galactic and Magellanic Cloud clusters investigated to date.

Item Type: Article
Uncontrolled Keywords: 0201 Astronomical and Space Sciences; Astronomy & Astrophysics
Subjects: Q Science > QB Astronomy
Q Science > QC Physics
Divisions: Astrophysics Research Institute
Publisher: EDP Sciences
SWORD Depositor: A Symplectic
Date Deposited: 03 Dec 2024 16:06
Last Modified: 03 Dec 2024 16:15
DOI or ID number: 10.1051/0004-6361/202450088
URI: https://researchonline.ljmu.ac.uk/id/eprint/25028
View Item View Item