The Fractal Geometry of the Cosmic Web and its Formation
arXiv:1810.02311 · doi:10.1155/2019/6587138
Abstract
The cosmic web structure is studied with the concepts and methods of fractal geometry, employing the adhesion model of cosmological dynamics as a basic reference. The structures of matter clusters and cosmic voids in cosmological N-body simulations or the Sloan Digital Sky Survey are elucidated by means of multifractal geometry. A non-lacunar multifractal geometry can encompass three fundamental descriptions of the cosmic structure, namely, the web structure, hierarchical clustering, and halo distributions. Furthermore, it explains our present knowledge of cosmic voids. In this way, a unified theory of the large-scale structure of the universe seems to emerge. The multifractal spectrum that we obtain significantly differs from the one of the adhesion model and conforms better to the laws of gravity. The formation of the cosmic web is best modeled as a type of turbulent dynamics, generalizing the known methods of Burgers turbulence.
35 pages, 8 figures; corrected typos, added references; further discussion of cosmic voids; accepted by Advances in Astronomy
References in corpus (8)
- Burgers Turbulence
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Cited by in corpus (8)
- Galaxy Distributions as Fractal Systems
- Cosmic Web Dissection in Fuzzy Dark Matter Cosmologies
- Correlation function: biasing and fractal properties of the cosmic web
- Scaling laws in the stellar mass distribution and the transition to homogeneity
- Scale Symmetry in the Universe
- Analysis of the structural complexity of Crab Nebula observed at radio frequency using a multifractal approach
- Fractional entropy of the Brown-Kuchař dust in fractional anti-de Sitter quantum gravity
- Go with the Flow: The Self-Similar and Non-Linear Behaviour of Large-Scale In- and Outflows and the Impact of Accretion Shocks from Galaxies to Galaxy Clusters