The spherical collapse model in time varying vacuum cosmologies
arXiv:1005.5592 · doi:10.1103/PhysRevD.82.083512
Abstract
We investigate the virialization of cosmic structures in the framework of flat FLRW cosmological models, in which the vacuum energy density evolves with time. In particular, our analysis focuses on the study of spherical matter perturbations, as they decouple from the background expansion, "turn around" and finally collapse. We generalize the spherical collapse model in the case when the vacuum energy is a running function of the Hubble rate, . A particularly well motivated model of this type is the so-called quantum field vacuum, in which is a quadratic function, , with . This model was previously studied by our team using the latest high quality cosmological data to constrain its free parameters, as well as the predicted cluster formation rate. It turns out that the corresponding Hubble expansion history resembles that of the traditional CDM cosmology. We use this CDM framework to illustrate the fact that the properties of the spherical collapse model (virial density, collapse factor, etc.) depend on the choice of the considered vacuum energy (homogeneous or clustered). In particular, if the distribution of the vacuum energy is clustered, then, under specific conditions, we can produce more concentrated structures with respect to the homogeneous vacuum energy case.
14 pages, 4 figures, minor changes, accepted for publication in Phys. Rev. D
References in corpus (34)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
- Cosmology and the Fate of Dilatation Symmetry
- Improved Cosmological Constraints from New, Old and Combined Supernova Datasets
- Improved Dark Energy Constraints from ~100 New CfA Supernova Type Ia Light Curves
- WMAP constraints on low redshift evolution of dark energy
- A Spitzer-Selected Galaxy Cluster at z=1.62
- On the possible running of the cosmological "constant"
- Cosmologies with Energy Exchange
- Effects of the interaction between dark energy and dark matter on cosmological parameters
- Dark energy: a quantum fossil from the inflationary Universe?
- Structure formation in the presence of dark energy perturbations
- LXCDM: a cosmon model solution to the cosmological coincidence problem?
- Dynamics of Interacting Quintessence Models: Observational Constraints
- Mass functions in coupled Dark Energy models
- New interactions in the dark sector mediated by dark energy
- The spherical collapse model and cluster formation beyond the cosmology: Indications for a clustered dark energy?
- Determining Cosmological Parameters with Latest Observational Data
- Probing Dynamics of Dark Energy with Supernova, Galaxy Clustering and the Three-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations
- Cosmic perturbations with running G and Lambda
- Galaxy rotation curves from General Relativity with Renormalization Group corrections
- Spherical Collapse in Chameleon Models
- Relaxing a large cosmological constant
- Probing Dark Energy at Galactic and Cluster Scales
- Virialization of cosmological structures in models with time varying equation of state
- Cosmological Constant Problems and Renormalization Group
- Effective growth of matter density fluctuations in the running LCDM and LXCDM models
- Dark-Energy Dynamics Required to Solve the Cosmic Coincidence
- Model for a Universe described by a non-minimally coupled scalar field and interacting dark matter
- Dark energy interacting with neutrinos and dark matter: a phenomenological theory
- An Improved Semi-Analytical Spherical Collapse Model for Non-linear Density Evolution
- Planck Scale Cosmology in Resummed Quantum Gravity
- On the Running of the Cosmological Constant in Quantum General Relativity
- Resummed Quantum Gravity
Cited by in corpus (33)
- Cosmological constant and vacuum energy: old and new ideas
- Dynamical vacuum energy in the expanding Universe confronted with observations: a dedicated study
- Noether symmetries and analytical solutions in f(T)-cosmology: A complete study
- Complete Cosmic History with a dynamical Lambda(H) term
- Hubble expansion and structure formation in the "running FLRW model" of the cosmic evolution
- New Cosmic Accelerating Scenario without Dark Energy
- Cosmologies with a time dependent vacuum
- Spherical collapse model with shear and angular momentum in dark energy cosmologies
- Can dark energy be expressed as a power series of the Hubble parameter?
- A comparison of structure formation in minimally and non-minimally coupled quintessence models
- Effects of shear and rotation on the spherical collapse model for clustering dark energy
- Hubble parameter data constraints on dark energy
- Matter Non-conservation in the Universe and Dynamical Dark Energy
- Extended Spherical Collapse and the Accelerating Universe
- Dynamically avoiding fine-tuning the cosmological constant: the "Relaxed Universe"
- Confronting the relaxation mechanism for a large cosmological constant with observations
- Structure Formation in Generalized Rastall Gravity
- Evolution of spherical overdensities in holographic dark energy models
- Galaxy cluster angular size data constraints on dark energy
- A short review on clustering dark energy
- Constraining H0 in General Dark Energy Models from Sunyaev-Zeldovich/X-ray Technique and Complementary Probes
- Galaxy clusters and structure formation in quintessence versus phantom dark energy universe
- Effects of Rastall parameter on perturbation of dark sectors of the Universe
- Spherical collapse and virialization in gravities
- Generalized Layzer-Irvine equation: the role of dark energy perturbations in cosmic structure formation
- Cosmic expansion and structure formation in running vacuum cosmologies
- Effects of tidal gravitational fields in clustering dark energy models
- Improved Lemaitre-Tolman model and the mass and turn-around radius in group of galaxies II: the role of dark energy
- Symmetries of Differential equations and Applications in Relativistic Physics
- Layzer-Irvine equation: new perspectives and the role of interacting dark energy
- Improved Lemaitre-Tolman model and the mass and turn-around radius in group of galaxies
- Top-Hat Spherical Collapse with Clustering Dark Energy. I. Radius Evolution and Critical Contrast Density
- Holographic Ricci DE as running vacuum with nonlinear interactions