Observable Deviations from Homogeneity in an Inhomogeneous Universe
arXiv:1608.04403 · doi:10.3847/1538-4357/833/2/247
Abstract
How does inhomogeneity affect our interpretation of cosmological observations? It has long been wondered to what extent the observable properties of an inhomogeneous universe differ from those of a corresponding Friedman-Lemaitre-Robertson-Walker (FLRW) model, and how the inhomogeneities affect that correspondence. Here, we use numerical relativity to study the behavior of light beams traversing an inhomogeneous universe and construct the resulting Hubble diagrams. The universe that emerges exhibits an average FLRW behavior, but inhomogeneous structures contribute to deviations in observables across the observer's sky. We also investigate the relationship between angular diameter distance and the angular extent of a source, finding deviations that grow with source redshift. These departures from FLRW are important path-dependent effects with implications for using real observables in an inhomogeneous universe such as our own.
9 pages, 4 figures
References in corpus (5)
- Confronting Lemaitre-Tolman-Bondi models with Observational Cosmology
- Testing the Void against Cosmological data: fitting CMB, BAO, SN and H0
- Black Hole Universe with
- Ricci focusing, shearing, and the expansion rate in an almost homogeneous Universe
- 3+1 geodesic equation and images in numerical spacetimes
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- The background Friedmannian Hubble constant in relativistic inhomogeneous cosmology and the age of the Universe
- Post-Newtonian Gravity in Cosmology