Testing the bloated star hypothesis in the massive young stellar object IRAS 19520+2759 through optical and infrared variability
Abstract
Using optical time series with Telescopi Joan Or\'o (TJO), Gaia, TESS, and NEOWISE archival data, we performed a variability study on the candidate bloated massive young stellar object (MYSO) IRAS 19520+2759. This is the first time that a bloated star candidate has been tested for the theoretically predicted periodic variability. The source is found to be variable at optical and mid-infrared wavelengths and classified as a long-period variable MYSO. The observed TJO data gives a period of the source of 27040 days (in the Rc band) and 27050 days (in the Ic band), which is very close to the value predicted by the theoretical Period-Luminosity relation for a bloated young star of . Additionally, a large period of 46080 days (in the G band) and 44070 (in the Rp band) is also visible in the Gaia light curve. The physical parameters of the source, such as mass, radius, and accretion rate, based on the theoretical predictions for the spherical accretion case and corresponding to a period of 270--460 days, are --28, --900 and --. However, these numbers are very sensitive to the effective temperatures assumed in the models. Additionally, these values strongly depend on the geometry of accretion and could significantly decrease for the case of a MYSO accreting through a disc. The observed periodic variability, the observed colour trend, and the nature of the variability are found to be consistent with the pulsational model for a bloated MYSO.
Keywords
Cite
@article{arxiv.2503.16733,
title = {Testing the bloated star hypothesis in the massive young stellar object IRAS 19520+2759 through optical and infrared variability},
author = {Rakesh Pandey and Aina Palau and Javier Serna and Rolf Kuiper and Álvaro Sánchez-Monge and Saurabh Sharma and Raghvendra Sahai and Carmen Sánchez Contreras and Jesús Hernández and Carlos Román-Zúñiga and Florian Rodler},
journal= {arXiv preprint arXiv:2503.16733},
year = {2025}
}
Comments
18 pages, 15 figures, 1 table. Accepted for publication in MNRAS