Voids in cosmological simulations over cosmic time
Rados{\l}aw Wojtak, Devon Powell, Tom Abel

TL;DR
This paper introduces a new method for tracking the evolution of cosmic voids in simulations, revealing that void shapes and configurations are largely determined by initial conditions and evolve collectively over time.
Contribution
The paper presents a novel watershed-based method for continuous void tracking in cosmological simulations, reducing numerical artifacts and enabling detailed analysis of void evolution.
Findings
Void shapes evolve collectively with minimal change in axial ratios.
Void configurations at low redshift retain features from initial conditions.
Density profiles develop a bucket-like shape with a flat core and sharp walls.
Abstract
We study evolution of voids in cosmological simulations using a new method for tracing voids over cosmic time. The method is based on tracking watershed basins (contiguous regions around density minima) of well developed voids at low redshift, on a regular grid of density field. It enables us to construct a robust and continuous mapping between voids at different redshifts, from initial conditions to the present time. We discuss how the new approach eliminates strong spurious effects of numerical origin when voids evolution is traced by matching voids between successive snapshots (by analogy to halo merger trees). We apply the new method to a cosmological simulation of a standard LambdaCDM cosmological model and study evolution of basic properties of typical voids (with effective radii between 6Mpc/h and 20Mpc/h at redshift z=0) such as volumes, shapes, matter density distributions and…
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