Testing the Cosmological Principle: On the Time Dilation of Distant Sources
arXiv:2305.06771 · doi:10.1093/mnras/stad1454
Abstract
We present a novel test of the cosmological principle: the idea that, on sufficiently large scales, the universe should appear homogeneous and isotropic to observers comoving with the Hubble flow. This is a fundamental assumption in modern cosmology, underpinning the use of the Friedmann-Lemaître-Robertson-Walker metric as part of the concordance CDM paradigm. However, the observed dipole imprinted on the Cosmic Microwave Background (CMB) is interpreted as our departure from the Hubble flow, and such a proper motion will induce a directionally-dependent time dilation over the sky. We illustrate the feasibility of detection of this 'time dilation dipole' and sketch the practical steps involved in its extraction from a catalogue of sources with intrinsic time-scales. In essence, whilst the scale of this dilation is small, being of order of 0.1%, it will in principle be detectable in large scale surveys of variable cosmological sources, such as quasars and supernovae. The degree of alignment of the time dilation dipole with the kinematic dipole derived from the CMB will provide a new assessment of the cosmological principle, and address the tension in dipole measures from other observations.
9 pages, 4 figures, accepted for publication in MNRAS
References in corpus (11)
- Array Programming with NumPy
- Modeling the Time Variability of SDSS Stripe 82 Quasars as a Damped Random Walk
- Is Quasar Optical Variability a Damped Random Walk?
- The CatWISE2020 Catalog
- The Rapid ASKAP Continuum Survey I: Design and First Results
- Are the Variability Properties of the Kepler AGN Light Curves Consistent with a Damped Random Walk?
- Limitations on the recovery of the true AGN variability parameters using Damped Random Walk modeling
- Time Dilation in Type Ia Supernova Spectra at High Redshift
- Model-independent Estimations for the Cosmic Curvature from the Latest Strong Gravitational Lensing Systems
- New evidence for a cosmological distribution of stellar mass primordial black holes
- LSST Cadence Strategy Evaluations for AGN Time-series Data in Wide-Fast-Deep Field