Luminosity distance in Swiss cheese cosmology with randomized voids. II. Magnification probability distributions
arXiv:1109.1873 · doi:10.1103/PhysRevD.85.023510
Abstract
We study the fluctuations in luminosity distances due to gravitational lensing by large scale (> 35 Mpc) structures, specifically voids and sheets. We use a simplified "Swiss cheese" model consisting of a Λ-CDM Friedman-Robertson-Walker background in which a number of randomly distributed non-overlapping spherical regions are replaced by mass compensating comoving voids, each with a uniform density interior and a thin shell of matter on the surface. We compute the distribution of magnitude shifts using a variant of the method of Holz & Wald (1998), which includes the effect of lensing shear. The standard deviation of this distribution is ~ 0.027 magnitudes and the mean is ~ 0.003 magnitudes for voids of radius 35 Mpc, sources at redshift z_s=1.0, with the voids chosen so that 90% of the mass is on the shell today. The standard deviation varies from 0.005 to 0.06 magnitudes as we vary the void size, source redshift, and fraction of mass on the shells today. If the shell walls are given a finite thickness of ~ 1 Mpc, the standard deviation is reduced to ~ 0.013 magnitudes. This standard deviation due to voids is a factor ~ 3 smaller than that due to galaxy scale structures. We summarize our results in terms of a fitting formula that is accurate to ~ 20%, and also build a simplified analytic model that reproduces our results to within ~ 30%. Our model also allows us to explore the domain of validity of weak lensing theory for voids. We find that for 35 Mpc voids, corrections to the dispersion due to lens-lens coupling are of order ~ 4%, and corrections to due shear are ~ 3%. Finally, we estimate the bias due to source-lens clustering in our model to be negligible.
References in corpus (15)
- Cosmology with Weak Lensing Surveys
- On cosmological observables in a swiss-cheese universe
- Reducing the weak lensing noise for the gravitational wave Hubble diagram using the non-Gaussianity of the magnification distribution
- Light-cone averages in a swiss-cheese universe
- Can inhomogeneties accelerate the cosmic volume expansion?
- Luminosity distance in "Swiss cheese" cosmology with randomized voids: I. Single void size
- Accurate Modeling of Weak Lensing with the sGL Method
- Swiss Cheese and a Cheesy CMB
- Reducing distance errors for standard candles and standard sirens with weak-lensing shear and flexion maps
- On light propagation in Swiss-Cheese cosmologies
- Lensing and Supernovae: Quantifying The Bias on the Dark Energy Equation of State
- Large-scale inhomogeneities may improve the cosmic concordance of supernovae
- Effects of voids on the reconstruction of the equation of state of Dark Energy
- Gravitational Wave Sirens as a Triple Probe of Dark Energy
- Modification to the Luminosity Distance Redshift Relation in Modified Gravity Theories
Cited by in corpus (16)
- Interpretation of the Hubble diagram in a nonhomogeneous universe
- Average expansion rate and light propagation in a cosmological Tardis spacetime
- Can all cosmological observations be accurately interpreted with a unique geometry?
- Ricci focusing, shearing, and the expansion rate in an almost homogeneous Universe
- Conformally Friedmann-Lemaitre-Robertson-Walker cosmologies
- Swiss-cheese models and the Dyer-Roeder approximation
- Observables in a lattice Universe
- Light propagation in inhomogeneous and anisotropic cosmologies
- Uncertainty on w from large-scale structure
- Towards statistically homogeneous and isotropic perfect fluid universes with cosmic backreaction
- The theory of stochastic cosmological lensing
- Cosmic backreaction and the mean redshift drift from symbolic regression
- Luminosity distance in Swiss cheese cosmology with randomized voids and galaxy halos
- On the relationship between mean observations, spatial averages and the Dyer-Roeder approximation in Einstein-Straus models
- CMB seen through random Swiss Cheese
- Post-Newtonian Gravity in Cosmology