Red giant - jet collisions in galactic nuclei I: 3D hydrodynamical model of a few stellar orbits
Abstract
Several models have been proposed to explain missing red giants (RGs) near the Galactic centre. Recently, a scenario has been suggested that predicts, among other processes, a long-term ablation of the surface layers of RGs during their repetitive passages through the Galactic jet (Zaja\v{c}ek et al., 2020). In this study, we perform detailed three-dimensional numerical modelling of this phenomenon. We calculate the ablation rate of the surface layers of a RG orbiting the supermassive black hole (SMBH) as it passes through the nuclear jet. In particular, we model the jet-star interaction for approximately 10 passages for the closer orbital distance of and 2 passages for . We find that the mass loss due to ablation by the jet behaves with time as and the total ablated mass during a single active galactic nucleus (AGN) phase ( years) is . We arrive at similar rates of the stellar ablation for the relatively smaller jet luminosity as in the previous analytical calculations. For larger jet luminosities of and , the ablation rates inferred from interactions as well as extrapolated power-law fits are significantly lower than analytical values. Overall, the mass ablation rate per interaction and the extrapolated cumulative mass loss during the jet activity are comparable to the stellar-wind mass loss. For the smallest orbital distance of , we also track the thermal behaviour of the stellar surface layer, whose temperature appears to grow rapidly during the first 10 passages from (spectral type M) to (spectral type A). RG-jet interactions can thus lead to observable changes in the nuclear stellar population during the jet existence.
Keywords
Cite
@article{arxiv.2409.17773,
title = {Red giant - jet collisions in galactic nuclei I: 3D hydrodynamical model of a few stellar orbits},
author = {Petr Kurfürst and Michal Zajaček and Norbert Werner and Jiří Krtička},
journal= {arXiv preprint arXiv:2409.17773},
year = {2025}
}
Comments
22 pages, 23 figures, 2 tables; accepted by the MNRAS Main journal