Galaxies going MAD: The Galaxy-Finder Comparison Project
arXiv:1210.2578 · doi:10.1093/mnras/sts173
Abstract
With the ever increasing size and complexity of fully self-consistent simulations of galaxy formation within the framework of the cosmic web, the demands upon object finders for these simulations has simultaneously grown. To this extent we initiated the Halo Finder Comparison Project that gathered together all the experts in the field and has so far led to two comparison papers, one for dark matter field haloes (Knebe et al. 2011), and one for dark matter subhaloes (Onions et al. 2012). However, as state-of-the-art simulation codes are perfectly capable of not only following the formation and evolution of dark matter but also account for baryonic physics (e.g. hydrodynamics, star formation, feedback) object finders should also be capable of taking these additional processes into consideration. Here we report on a comparison of codes as applied to the Constrained Local UniversE Simulation (CLUES) of the formation of the Local Group which incorporates much of the physics relevant for galaxy formation. We compare both the properties of the three main galaxies in the simulation (representing the MW, M31, and M33) as well as their satellite populations for a variety of halo finders ranging from phase-space to velocity-space to spherical overdensity based codes, including also a mere baryonic object finder. We obtain agreement amongst codes comparable to (if not better than) our previous comparisons, at least for the total, dark, and stellar components of the objects. However, the diffuse gas content of the haloes shows great disparity, especially for low-mass satellite galaxies. This is primarily due to differences in the treatment of the thermal energy during the unbinding procedure. We acknowledge that the handling of gas in halo finders is something that needs to be dealt with carefully, and the precise treatment may depend sensitively upon the scientific problem being studied.
14 interesting pages, 17 beautiful figures, and 2 informative tables accepted for publication in MNRAS (matches published version)
References in corpus (9)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- The Luminosity Function of the Milky Way Satellites
- Cosmological puzzle resolved by stellar feedback in high redshift galaxies
- SubHaloes going Notts: The SubHalo-Finder Comparison Project
- Erasing Dark Matter Cusps in Cosmological Galactic Halos with Baryons
- A test suite for quantitative comparison of hydrodynamics codes in astrophysics
- The Cosmic Code Comparison Project
- Dissecting Galaxy Formation: I. Comparison Between Pure Dark Matter and Baryonic Models
- Bright and Dark Matter in Elliptical Galaxies: Mass and Velocity Distributions from Self-consistent Hydrodynamical Simulations
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