English

Galaxy Formation with local photoionisation feedback I. Methods

Astrophysics of Galaxies 2013-12-04 v2 Cosmology and Nongalactic Astrophysics

Abstract

We present a first study of the effect of local photoionising radiation on gas cooling in smoothed particle hydrodynamics simulations of galaxy formation. We explore the combined effect of ionising radiation from young and old stellar populations. The method computes the effect of multiple radiative sources using the same tree algorithm used for gravity, so it is computationally efficient and well resolved. The method foregoes calculating absorption and scattering in favour of a constant escape fraction for young stars to keep the calculation efficient enough to simulate the entire evolution of a galaxy in a cosmological context to the present day. This allows us to quantify the effect of the local photoionisation feedback through the whole history of a galaxy`s formation. The simulation of a Milky Way like galaxy using the local photoionisation model forms ~ 40 % less stars than a simulation that only includes a standard uniform background UV field. The local photoionisation model decreases star formation by increasing the cooling time of the gas in the halo and increasing the equilibrium temperature of dense gas in the disc. Coupling the local radiation field to gas cooling from the halo provides a preventive feedback mechanism which keeps the central disc light and produces slowly rising rotation curves without resorting to extreme feedback mechanisms. These preliminary results indicate that the effect of local photoionising sources is significant and should not be ignored in models of galaxy formation.

Keywords

Cite

@article{arxiv.1310.6748,
  title  = {Galaxy Formation with local photoionisation feedback I. Methods},
  author = {R. Kannan and G. S. Stinson and A. V. Macciò and J. F. Hennawi and R. Woods and J. Wadsley and S. Shen and T. Robitaille and S. Cantalupo and T. R. Quinn and C. Christensen},
  journal= {arXiv preprint arXiv:1310.6748},
  year   = {2013}
}

Comments

Accepted for Publication in MNRAS, 13 pages, 13 figures

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