Constraints on a Bianchi type I spacetime extension of the standard $\Lambda$CDM model
Abstract
We consider the simplest anisotropic generalization, as a correction, to the standard CDM model, by replacing the spatially flat Robertson-Walker metric by the Bianchi type-I metric, which brings in a new term (mimicking the stiff fluid) in the average expansion rate of the Universe. From Hubble and Pantheon data, relevant to the late Universe (), we obtain the constraint , in line with the model-independent constraints. When the baryonic acoustic oscillations and cosmic microwave background (CMB) data are included, the constraint improves by 12 orders of magnitude, i.e., . We find that this constraint could alter neither the matter-radiation equality redshift nor the peak of the matter perturbations. Demanding that the expansion anisotropy has no significant effect on the standard big bang nucleosynthesis (BBN), we find the constraint . We show explicitly that the constraint from BBN renders the expansion anisotropy irrelevant to make a significant change in the CMB quadrupole temperature, whereas the constraint from the cosmological data in our model provides the temperature change up to , though it is much beyond the CMB quadrupole temperature.
Keywords
Cite
@article{arxiv.1905.06949,
title = {Constraints on a Bianchi type I spacetime extension of the standard $\Lambda$CDM model},
author = {Ozgur Akarsu and Suresh Kumar and Shivani Sharma and Luigi Tedesco},
journal= {arXiv preprint arXiv:1905.06949},
year = {2019}
}
Comments
13 pages, 4 figures, 5 tables; Matches the published version in Physical Review D