Test of the FLRW metric and curvature with strong lens time delays
arXiv:1704.04329 · doi:10.3847/1538-4357/aa697e
Abstract
We present a new model-independent strategy for testing the Friedmann-Lema\^ıtre-Robertson-Walker metric and constraining cosmic curvature, based on future time delay measurements of strongly lensed quasar-elliptical galaxy systems from the Large Synoptic Survey Telescope and supernova observations from the Dark Energy Survey. The test only relies on geometric optics. It is independent of the energy contents of the universe and the validity of the Einstein equation on cosmological scales. The study comprises two levels: testing the FLRW metric through the Distance Sum Rule and determining/constraining cosmic curvature. We propose an effective and efficient (redshift) evolution model for performing the former test, which allows us to concretely specify the violation criterion for the FLRW Distance Sum Rule. If the FLRW metric is consistent with the observations, then, on the second level, the cosmic curvature parameter will be constrained to or (), depending on the availability of high-redshift supernovae, much more stringent than current model-independent techniques. We also show that the bias in the time delay method might be well controlled, leading to robust results. The proposed method is a new independent tool for both testing the fundamental assumptions of homogeneity and isotropy in cosmology and for determining cosmic curvature. It is complementary to cosmic microwave background plus baryon acoustic oscillation analyses, which normally assume a cosmological model with dark energy domination in the late-time universe.
5 pages, 4 figures, to appear in ApJ
References in corpus (13)
- Cosmological Constraints from the SDSS Luminous Red Galaxies
- H0LiCOW V. New COSMOGRAIL time delays of HE0435-1223: to 3.8% precision from strong lensing in a flat CDM model
- A general test of the Copernican Principle
- H0LiCOW IV. Lens mass model of HE 0435-1223 and blind measurement of its time-delay distance for cosmology
- Lemaitre-Tolman-Bondi model and accelerating expansion
- Strong Lens Time Delay Challenge: II. Results of TDC1
- Speed of Gravitational Waves from Strongly Lensed Gravitational Waves and Electromagnetic Signals
- Model-independent estimations for the curvature from standard candles and clocks
- Revisiting Studies of the Statistical Property of a Strong Gravitational Lens System and Model-independent Constraint on the Curvature of the Universe
- Probing spatial homogeneity with LTB models: a detailed discussion
- Dark energy and decompactification in string gas cosmology
- Geometrical order-of-magnitude estimates for spatial curvature in realistic models of the Universe
- A critical assessment of some inhomogeneous pressure Stephani models
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- Be It Unresolved: Measuring Time Delays from Lensed Supernovae
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