Angular Momentum Evolution in Dark Matter Halos
arXiv:1006.4365 · doi:10.1111/j.1365-2966.2010.17824.x
Abstract
We have analyzed high resolution N-body simulations of dark matter halos, focusing specifically on the evolution of angular momentum. We find that not only is individual particle angular momentum not conserved, but the angular momentum of radial shells also varies over the age of the Universe by up to factors of a few. We find that torques from external structure are the most likely cause for this distribution shift. Since the model of adiabatic contraction that is often applied to model the effects of galaxy evolution on the dark-matter density profile in a halo assumes angular momentum conservation, this variation implies that there is a fundamental limit on the possible accuracy of the adiabatic contraction model in modeling the response of DM halos to the growth of galaxies.
16 pages, 9 figures, accepted for publication in MNRAS
References in corpus (14)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- A Semi-Analytic Model for the Co-evolution of Galaxies, Black Holes, and Active Galactic Nuclei
- High-Resolution Rotation Curves and Galaxy Mass Models from THINGS
- Forming Disk Galaxies in Lambda CDM Simulations
- The Dual Origin of Stellar Halos
- Generating Dark Matter Halo Merger Trees
- A Revised Model for the Formation of Disk Galaxies: Low Spin and Dark-Halo Expansion
- The MORGANA model for the rise of galaxies and active nuclei
- Baryonic Pinching of Galactic Dark Matter Halos
- The Impact of Feedback on Disk Galaxy Scaling Relations
- Constructing Merger Trees that Mimic N-Body Simulations
- Dissecting Galaxy Formation: I. Comparison Between Pure Dark Matter and Baryonic Models
- Disk Evolution and Bar Triggering Driven by Interactions with Dark Matter Substructure
- Dark-Matter Decays and Self-Gravitating Halos