Measuring the cosmological constant with redshift surveys
Abstract
It has been proposed that the cosmological constant might be measured from geometric effects on large-scale structure. A positive vacuum density leads to correlation-function contours which are squashed in the radial direction when calculated assuming a matter-dominated model. We show that this effect will be somewhat harder to detect than previous calculations have suggested: the squashing factor is likely to be , given realistic constraints on the matter contribution to . Moreover, the geometrical distortion risks being confused with the redshift-space distortions caused by the peculiar velocities associated with the growth of galaxy clustering. These depend on the density and bias parameters via the combination , and we show that the main practical effect of a geometrical flattening factor is to simulate gravitational instability with . Nevertheless, with datasets of sufficient size it is possible to distinguish the two effects; we discuss in detail how this should be done. New-generation redshift surveys of galaxies and quasars are potentially capable of detecting a non-zero vacuum density, if it exists at a cosmologically interesting level.
Cite
@article{arxiv.astro-ph/9605017,
title = {Measuring the cosmological constant with redshift surveys},
author = {W. E. Ballinger and J. A. Peacock and A. F. Heavens},
journal= {arXiv preprint arXiv:astro-ph/9605017},
year = {2015}
}
Comments
MNRAS in press. 12 pages LaTeX including Postscript figures. Uses mn.sty and epsf.sty