The Zeldovich approximation: key to understanding Cosmic Web complexity
arXiv:1311.7134 · doi:10.1093/mnras/stt2142
Abstract
We describe how the dynamics of cosmic structure formation defines the intricate geometric structure of the spine of the cosmic web. The Zeldovich approximation is used to model the backbone of the cosmic web in terms of its singularity structure. The description by Arnold et al. (1982) in terms of catastrophe theory forms the basis of our analysis. This two-dimensional analysis involves a profound assessment of the Lagrangian and Eulerian projections of the gravitationally evolving four-dimensional phase-space manifold. It involves the identification of the complete family of singularity classes, and the corresponding caustics that we see emerging as structure in Eulerian space evolves. In particular, as it is instrumental in outlining the spatial network of the cosmic web, we investigate the nature of spatial connections between these singularities. The major finding of our study is that all singularities are located on a set of lines in Lagrangian space. All dynamical processes related to the caustics are concentrated near these lines. We demonstrate and discuss extensively how all 2D singularities are to be found on these lines. When mapping this spatial pattern of lines to Eulerian space, we find a growing connectedness between initially disjoint lines, resulting in a percolating network. In other words, the lines form the blueprint for the global geometric evolution of the cosmic web.
37 pages, 21 figures, accepted for publication in MNRAS
References in corpus (4)
- Properties of Dark Matter Haloes in Clusters, Filaments, Sheets and Voids
- The darkness that shaped the void: dark energy and cosmic voids
- The three dimensional skeleton: tracing the filamentary structure of the universe
- The fully connected N-dimensional skeleton: probing the evolution of the cosmic web
Cited by in corpus (52)
- Evolution of the cosmic web
- Tracing the cosmic web
- The Zeldovich approximation
- An adaptively refined phase-space element method for cosmological simulations and collisionless dynamics
- Tests of redshift-space distortions models in configuration space for the analysis of the BOSS final data release
- The ThreeHundred: the structure and properties of cosmic filaments in the outskirts of galaxy clusters
- Caustic Skeleton & Cosmic Web
- Post-collapse perturbation theory in 1D cosmology -- beyond shell-crossing
- New method for initial density reconstruction
- Cosmic filaments in galaxy cluster outskirts: quantifying finding filaments in redshift space
- The Zeldovich approximation and wide-angle redshift-space distortions
- Phase-space structure of protohalos: Vlasov versus Particle-Mesh
- Cosmic filaments delay quenching inside clusters
- Holomorphic Hartree-Fock Theory: The Nature of Two-Electron Problems
- Vlasov-Poisson in 1D for initially cold systems: post-collapse Lagrangian perturbation theory
- Evolution of mass and velocity filed in comic web: comparison between baryonic and dark matter
- The phase-space structure of nearby dark matter as constrained by the SDSS
- Lagrangian cosmological perturbation theory at shell-crossing
- Large-Scale Velocity Dispersion and the Cosmic Web
- Semiclassical path to cosmic large-scale structure
- The Fractal Geometry of the Cosmic Web and its Formation
- A hierarchical field-level inference approach to reconstruction from sparse Lyman- forest data
- The cosmic web connection to the dark matter halo distribution through gravity
- Configuration entropy of the Cosmic Web: Can voids mimic the dark energy?
- Topology and geometry of the dark matter web: a multistream view
- Parabolic regularization of the gradient catastrophes for the Burgers-Hopf equation and Jordan chain
- The Zeldovich & Adhesion approximations, and applications to the local universe
- Cold dark matter protohalo structure around collapse: Lagrangian cosmological perturbation theory versus Vlasov simulations
- Finding Singularities in Gravitational Lensing
- The features of the Cosmic Web unveiled by the flip-flop field
- The large-scale environment of thermonuclear and core-collapse supernovae
- 21cmFirstCLASS II. Early linear fluctuations of the 21cm signal
- Structure in the 3D Galaxy Distribution: II. Voids and Watersheds of Local Maxima and Minima
- Tetrahedral collapse: a rotational toy model of simultaneous dark-matter halo, filament and wall formation
- The cosmic spiderweb: equivalence of cosmic, architectural, and origami tessellations
- On the origin of cosmic web
- On the alignment of haloes, filaments and magnetic fields in the simulated cosmic web
- Identifying Dark Matter Haloes by the Caustic Boundary
- Cosmic Web & Caustic Skeleton: non-linear Constrained Realizations -- 2D case studies
- On general-relativistic Lagrangian perturbation theory and its non-perturbative generalization
- An Origami Approximation to the Cosmic Web
- Fast and accurate collapse-time predictions for collisionless matter
- The gravitational force field of proto-pancakes
- Dark matter haloes: a multistream view
- The energy shear of protohaloes
- Lagrangian Volume Deformations around Simulated Galaxies
- 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
- Learning from Topology: Cosmological Parameter Estimation from the Large-scale Structure
- Collisionless Dynamics and the Cosmic Web
- Evolving Ultralight Scalars into Non-Linearity with Lagrangian Perturbation Theory
- The structural elements of the cosmic web
- Kolmogorov complexity in the Milky Way and its reduction with warm dark matter