Extended Spherical Collapse and the Accelerating Universe
arXiv:1207.5789 · doi:10.1142/S0218271813500387
Abstract
The influence of the shear stress and angular momentum on the nonlinear spherical collapse model is discussed in the framework of the Einstein-de Sitter (EdS) and CDM models. By assuming that the vacuum component is not clustering within the homogeneous nonspherical overdensities, we show how the local rotation and shear affects the linear density threshold for collapse of the non-relativistic component () and its virial overdensity (). It is also found that the net effect of shear and rotation in galactic scale is responsible for higher values of the linear overdensity parameter as compared with the standard spherical collapse model (no shear and rotation).
5 pages, 2 figs
References in corpus (8)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Dark Energy and the Accelerating Universe
- Improved Cosmological Constraints from New, Old and Combined Supernova Datasets
- Spectra and Light Curves of Six Type Ia Supernovae at 0.511 < z < 1.12 and the Union2 Compilation
- Detection of the ISW and SZ effects from the CMB-Galaxy correlation
- Spherical collapse model with shear and angular momentum in dark energy cosmologies
- Self-Similar Spherical Collapse with Tidal Torque
- Some improvements to the spherical collapse model
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