On the luminosity distance and the epoch of acceleration
arXiv:1503.01122 · doi:10.1093/mnras/stu2369
Abstract
Standard cosmological models based on general relativity (GR) with dark energy predict that the Universe underwent a transition from decelerating to accelerating expansion at a moderate redshift . Clearly, it is of great interest to directly measure this transition in a model-independent way, without the assumption that GR is the correct theory of gravity. We explore to what extent supernova (SN) luminosity distance measurements provide evidence for such a transition: we show that, contrary to intuition, the well-known "turnover" in the SN distance residuals relative to an empty (Milne) model does not give firm evidence for such a transition within the redshift range spanned by SN data. The observed turnover in that diagram is predominantly due to the negative curvature in the Milne model, {\em not} the deceleration predicted by CDM and relatives. We show that there are several advantages in plotting distance residuals against a flat, non-accelerating model , and also remapping the axis to ; we outline a number of useful and intuitive properties of this presentation. We conclude that there are significant complementarities between SNe and baryon acoustic oscillations (BAOs): SNe offer high precision at low redshifts and give good constraints on the net {\em amount} of acceleration since , but are weak at constraining ; while radial BAO measurements are probably superior for placing direct constraints on .
Latex, 13 pages, 7 figures. Accepted by MNRAS. For the busy reader, Figs 4 and 6 are the main results
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- An alternative to the LCDM model: the case of scale invariance
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- Analysis of Pantheon+ supernova data suggests evidence of sign-changing pressure of the cosmological fluid