Redshift Evolution of the Fundamental Plane Relation in the IllustrisTNG Simulation
Abstract
We investigate the fundamental plane (FP) evolution of early-type galaxies in the IllustrisTNG-100 simulation (TNG100) from redshift to . We find that a tight plane relation already exists as early as . Its scatter stays as low as dex across this redshift range. Both slope parameters and (where with , , and being the typical size, velocity dispersion, and surface brightness) of the plane evolve mildly since , roughly consistent with observations. The FP residual (, where is the zero point of the FP) is found to strongly correlate with stellar age, indicating that stellar age can be used as a crucial fourth parameter of the FP. However, we find that , where for FPs in TNG, rather than zero as is typically inferred from observations. This implies that a tight power-law relation between the dynamical mass-to-light ratio and the dynamical mass (where , with being the gravitational constant) is not present in the TNG100 simulation. Recovering such a relation requires proper mixing between dark matter and baryons, as well as star formation occurring with correct efficiencies at the right mass scales. This represents a powerful constraint on the numerical models, which has to be satisfied in future hydrodynamical simulations.
Keywords
Cite
@article{arxiv.1906.00927,
title = {Redshift Evolution of the Fundamental Plane Relation in the IllustrisTNG Simulation},
author = {Shengdong Lu and Dandan Xu and Yunchong Wang and Shude Mao and Junqiang Ge and Volker Springel and Yuan Wang and Mark Vogelsberger and Naiman Jill and Lars Hernquist},
journal= {arXiv preprint arXiv:1906.00927},
year = {2020}
}
Comments
10 pages, 7 figures, 1 table. Accepted for publication in MNRAS