A Random Walk Model for Halo Triaxiality
arXiv:2205.02955 · doi:10.1093/mnras/stac2400
Abstract
We describe a semi-analytic model to predict the triaxial shapes of dark matter halos utilizing the sequences of random merging events captured in merger trees to follow the evolution of each halo's energy tensor. When coupled with a simple model for relaxation toward a spherical shape, we find that this model predicts distributions of halo axis length ratios which approximately agree with those measured from cosmological N-body simulations once constrained to match the median axis ratio at a single halo mass. We demonstrate the predictive and explanatory power of this model by considering conditioned distributions of axis length ratios, and the mass-dependence of halo shapes, finding these to be in good agreement with N-body results. This model provides both insight into the physics driving the evolution of halo triaxial shapes, and rapid quantitative predictions for the statistics of triaxiality connected directly to the formation history of the halo.
9 pages, 5 figures
References in corpus (12)
- Concentration, Spin and Shape of Dark Matter Haloes as a Function of the Cosmological Model: WMAP1, WMAP3 and WMAP5 results
- The spin and shape of dark matter haloes in the Millennium simulation of a LambdaCDM universe
- Generating Dark Matter Halo Merger Trees
- The Shape of the Gravitational Potential in Cold Dark Matter Halos
- The shapes, orientation, and alignment of Galactic dark matter subhalos
- A Statistical Study of Weak Lensing by Triaxial Dark Matter Halos: Consequences for Parameter Estimation
- Some like it triaxial: the universality of dark matter halo shapes and their evolution along the cosmic time
- Orbital parameters of infalling satellite haloes in the hierarchical CDM model
- Universality of dark matter haloes shape over six decades in mass: Insights from the Millennium XXL and SBARBINE simulations
- Properties of Dark Matter Halos as a Function of Local Environment Density
- Caught in the cosmic web: Environmental effect on halo concentrations, shape, and spin
- Halo concentrations from extended Press-Schechter merger histories