Angular momentum evolution of bulge stars in disc galaxies in NIHAO
Abstract
We study the origin of bulge stars and their angular momentum (AM) evolution in 10 spiral galaxies with baryonic masses above M in the NIHAO galaxy formation simulations. The simulated galaxies are in good agreement with observations of the relation between specific AM and mass of the baryonic component and the stellar bulge-to-total ratio (). We divide the star particles at into disc and bulge components using a hybrid photometric/kinematic decomposition method that identifies all central mass above an exponential disc profile as the `bulge'. By tracking the bulge star particles back in time, we find that on average 95\% of the bulge stars formed {\it in situ}, 3\% formed {\it ex situ} in satellites of the same halo, and only 2\% formed {\it ex situ} in external galaxies. The evolution of the AM distribution of the bulge stars paints an interesting picture: the higher the final ratio, the more the specific AM remains preserved during the bulge formation. In all cases, bulge stars migrate significantly towards the central region, reducing their average galactocentric radius by roughly a factor 2, independently of the final value. However, in the higher () objects, the velocity of the bulge stars increases and the AM of the bulge is almost conserved, whereas at lower values, the velocity of the bulge stars decreases and the AM of bulge reduces. The correlation between the evolution of the AM and suggests that bulge and disc formation are closely linked and cannot be treated as independent processes.
Keywords
Cite
@article{arxiv.1811.02239,
title = {Angular momentum evolution of bulge stars in disc galaxies in NIHAO},
author = {Liang Wang and Danail Obreschkow and Claudia del P. Lagos and Sarah M. Sweet and Deanne Fisher and Karl Glazebrook and Andrea V. Macciò and Aaron A. Dutton and Xi Kang},
journal= {arXiv preprint arXiv:1811.02239},
year = {2018}
}
Comments
17 pages, 16 Figures, 1 table; accepted for publication in MNRAS