Modelling the shapes of the largest gravitationally bound objects
arXiv:1010.2839 · doi:10.1111/j.1365-2966.2011.19028.x
Abstract
We combine the physics of the ellipsoidal collapse model with the excursion set theory to study the shapes of dark matter halos. In particular, we develop an analytic approximation to the nonlinear evolution that is more accurate than the Zeldovich approximation; we introduce a planar representation of halo axis ratios, which allows a concise and intuitive description of the dynamics of collapsing regions and allows one to relate the final shape of a halo to its initial shape; we provide simple physical explanations for some empirical fitting formulae obtained from numerical studies. Comparison with simulations is challenging, as there is no agreement about how to define a non-spherical gravitationally bound object. Nevertheless, we find that our model matches the conditional minor-to-intermediate axis ratio distribution rather well, although it disagrees with the numerical results in reproducing the minor-to-major axis ratio distribution. In particular, the mass dependence of the minor-to-major axis distribution appears to be the opposite to what is found in many previous numerical studies, where low-mass halos are preferentially more spherical than high-mass halos. In our model, the high-mass halos are predicted to be more spherical, consistent with results based on a more recent and elaborate halo finding algorithm, and with observations of the mass dependence of the shapes of early-type galaxies. We suggest that some of the disagreement with some previous numerical studies may be alleviated if we consider only isolated halos.
15 pages, 8 figures. New appendix added, extended discussion. Matches version accepted by MNRAS
References in corpus (37)
- The redshift dependence of the structure of massive LCDM halos
- The spin and shape of dark matter haloes in the Millennium simulation of a LambdaCDM universe
- Report of the Dark Energy Task Force
- A Catalog of Galaxy Clusters Observed by XMM-Newton
- Strong and weak lensing united III: Measuring the mass distribution of the merging galaxy cluster 1E0657-56
- The Evolution of Dark Matter Halo Properties in Clusters, Filaments, Sheets and Voids
- A Revised Model for the Formation of Disk Galaxies: Low Spin and Dark-Halo Expansion
- The Redshift Evolution of LCDM Halo Parameters: Concentration, Spin, and Shape
- The Causes of Halo Shape Changes Induced by Cooling Baryons: Disks Versus Substructures
- The shapes, orientation, and alignment of Galactic dark matter subhalos
- Precision photometric redshift calibration for galaxy-galaxy weak lensing
- Handbook for the GREAT08 Challenge: An image analysis competition for cosmological lensing
- Environmental Dependence of Cold Dark Matter Halo Formation
- Internal properties and environments of dark matter halos
- The Masses and Shapes of Dark Matter Halos from Galaxy-Galaxy Lensing in the CFHTLS
- Halo masses for optically-selected and for radio-loud AGN from clustering and galaxy-galaxy lensing
- Strong Lensing in Abell 1703: Constraints on the Slope of the Inner Dark Matter Distribution
- WINGS: A WIde-field Nearby Galaxy-cluster Survey. II. Deep optical photometry of 77 nearby clusters
- The Structure of Halos: Implications for Group and Cluster Cosmology
- LoCuSS: Connecting the Dominance and Shape of Brightest Cluster Galaxies with the Assembly History of Massive Clusters
- Environmental dependence in the ellipsoidal collapse model
- Alignments of Voids in the Cosmic Web
- Analytical Approach to Subhaloes Population in Dark Matter Haloes
- Weak lensing goes bananas: What flexion really measures
- The fully connected N-dimensional skeleton: probing the evolution of the cosmic web
- The Flattened Dark Matter Halo of M31 as Deduced from the Observed HI Scale Heights
- Perturbation theory and excursion set estimates of the probability distribution function of dark matter, and a method for reconstructing the initial distribution function
- Excursion Set Theory for generic moving barriers and non-Gaussian initial conditions
- Environmental Influences on the Morphology and Dynamics of Group Size Haloes
- A Search for the Most Massive Galaxies. II. Structure, Environment and Formation
- Why does the clustering of haloes depend on their formation history
- Spin alignment of dark matter haloes in the shells of the largest voids
- Halo Assembly Bias in the Quasi-linear Regime
- Stochastic gravitational wave background from cold dark matter halos
- Statistical properties of the linear tidal shear
- High-redshift voids in the excursion set formalism
- The Anisotropic Two-Point Correlation Functions of the Nonlinear Traceless Tidal Field in the Principal-Axis Frame
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- How to Zoom: Bias, Contamination, and Lagrange Volumes in Multimass Cosmological Simulations
- The Three-Dimensional Shapes of Galaxy Clusters
- Horizon Run 4 Simulation: Coupled Evolution of Galaxies and Large-scale Structures of the Universe
- Universality of dark matter haloes shape over six decades in mass: Insights from the Millennium XXL and SBARBINE simulations
- Ellipsoidal halo finders and implications for models of triaxial halo formation
- A look to the inside of haloes: a characterisation of the halo shape as a function of overdensity in the Planck cosmology
- The formation of Milky Way-mass disk galaxies in the first 500 million years of a cold dark matter universe
- Mass and Concentration estimates from Weak and Strong Gravitational Lensing: a Systematic Study
- On the initial shear field of the cosmic web
- Peaks and dips in Gaussian random fields: a new algorithm for the shear eigenvalues, and the excursion set theory
- Theoretical dark matter halo kinematics and triaxial shape
- On the anisotropic density distribution on large scales
- The extent of gravitationally bound structure in a ΛCDM universe
- A Random Walk Model for Halo Triaxiality