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arXiv · astro-ph/0302025

The angular size - redshift relation in power-law cosmologies

Abstract

A linear evolution of the cosmological scale factor is a feature in several models designed to solve the cosmological constant problem via a coupling between scalar or tensor classical fields to the space-time curvature as well as in some alternative gravity theories. In this paper, by assuming a general time dependence of the scale factor, $R \sim t^α$, we investigate observational constraints on the dimensionless parameter $α$ from measurements of the angular size for a large sample of milliarcsecond compact radio sources. In particular, we find that a strictly linear evolution, i.e., $α\simeq 1$ is favoured by these data, which is also in agreement with limits obtained from other independent cosmological tests. The dependence of the critical redshift $z_m$ (at which a given angular size takes its minimal value) with the index $α$ is briefly discussed.

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BibTeXRIS

Deepak Jain, Abha Dev, J. S. Alcaniz. 2003-03-24. The angular size - redshift relation in power-law cosmologies. https://doi.org/10.1088/0264-9381%2F20%2F20%2F311

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