Void Scaling and Void Profiles in CDM Models
arXiv:astro-ph/0111581 · doi:10.1046/j.1365-8711.2002.05296.x
Abstract
An analysis of voids using cosmological N-body simulations of cold dark matter models is presented. It employs a robust statistics of voids, that was recently applied to discriminate between data from the Las Campanas Redshift Survey and different cosmological models. Here we extend the analysis to 3D and show that typical void sizes D in the simulated galaxy samples obey a linear scaling relation with the mean galaxy separation lambda: D=D_0+nu*lambda. It has the same slope nu as in 2D, but with lower absolute void sizes. The scaling relation is able to discriminate between different cosmologies. For the best standard LCDM model, the slope of the scaling relation for voids in the dark matter halos is too steep as compared to the LCRS, with too small void sizes for well sampled data sets. The scaling relation of voids for dark matter halos with increasing mass thresholds is even steeper than that for samples of galaxy-mass halos where we sparse sample the data. This shows the stronger clustering of more massive halos. Further, we find a correlation of the void size to its central and environmental average density. While there is little sign of an evolution in samples of small DM halos with v_{circ} ~ 90 km/s, voids in halos with circular velocity over 200 km/s are larger at redshift z = 3 due to the smaller halo number density. The flow of dark matter from the underdense to overdense regions in an early established network of large scale structure is also imprinted in the evolution of the density profiles with a relative density decrease in void centers by 0.18 per redshift unit between z=3 and z=0.
12 pages, 9 eps figures, submitted to MNRAS
References in corpus (5)
Cited by in corpus (28)
- A hierarchy of voids: Much ado about nothing
- A Dynamical Classification of the Cosmic Web
- A Cosmic Watershed: the WVF Void Detection Technique
- The Multiscale Morphology Filter: Identifying and Extracting Spatial Patterns in the Galaxy Distribution
- The Aspen--Amsterdam Void Finder Comparison Project
- The structure of voids
- Universal Density Profile for Cosmic Voids
- The Cosmic Web: Geometric Analysis
- Cosmic Voids: structure, dynamics and galaxies
- Morphology of the supercluster-void network in LCDM cosmology
- Galaxy Voids in Cold Dark Matter Universes
- Constraints on large scale inhomogeneities from WMAP-5 and SDSS: confrontation with recent observations
- Voids in the 2dFGRS and LCDM simulations: spatial and dynamical properties
- Simulating Voids
- Formation of voids in the Universe within the Lemaitre-Tolman model
- Clues on void evolution III: Structure and dynamics in void shells
- Structural Analysis of the SDSS Cosmic Web I.Nonlinear Density Field Reconstructions
- Baryon effects on void statistics in the EAGLE simulation
- Large-scale modulation of star formation in void walls
- Measurement of the thermal Sunyaev-Zel'dovich effect around cosmic voids
- Las Campanas Loose Groups in the Supercluster-Void Network
- Scaling of voids and fractality in the galaxy distribution
- On the importance of high redshift intergalactic voids
- Simulating MOS science on the ELT: Ly forest tomography
- Modeling the Void H I Column Density Spectrum
- A Parameterized Variable Dark Energy Model: Structure Formation and Observational Constraints
- Merging Tree Algorithm of Growing Voids in Self Similar and CDM Models
- Voids in the Cosmic Web as a probe of dark energy