Halo models in modified gravity theories with self-accelerated expansion
arXiv:1108.2346 · doi:10.1142/S0218271811020421
Abstract
We investigate the structure of halos in the sDGP (self-accelerating branch of the Dvali-Gavadadze-Porrati braneworld gravity) model and the galileon modified gravity model on the basis of the static and spherically symmetric solutions of the collisionless Boltzmann equation, which reduce to the singular isothermal sphere model and the King model in the limit of Newtonian gravity. The common feature of these halos is that the density of a halo in the outer region is larger (smaller) in the sDGP (galileon) model, respectively, in comparison with Newtonian gravity. This comes from the suppression (enhancement) of the effective gravity at large distance in the sDGP (galileon) model, respectively. However, the difference between these modified gravity models and Newtonian gravity only appears outside the halo due to the Vainshtein mechanism, which makes it difficult to distinguish between them. We also discuss the case in which the halo density profile is fixed independently of the gravity model for comparison between our results and previous work.
15pages, 6 figures, maches the version to be published in Int. J. Mod. Phys. D, typos corrected
References in corpus (11)
- Dynamics of dark energy
- Covariant Galileon
- G-inflation: inflation driven by the Galileon field
- Galileon Cosmology
- Modified gravity models of dark energy
- Observational constraints on self-accelerating cosmology
- Observational constraints on Galileon cosmology
- Dynamical Masses in Modified Gravity
- Large-Scale Tests of the DGP Model
- Non-linear interactions in a cosmological background in the DGP braneworld
- Flat rotation curves in Chern-Simons modified gravity
Cited by in corpus (6)
- Vainshtein screening in a cosmological background in the most general second-order scalar-tensor theory
- Testing chameleon gravity with the Coma cluster
- Gas density profile in dark matter halo in chameleon cosmology
- Fast Weak Lensing Simulations with Halo Model
- Testing a generalized cubic Galileon gravity model with the Coma Cluster
- Testing gravity with halo density profiles observed through gravitational lensing