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Planck 2015 constraints on the non-flat $\phi$CDM inflation model
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abstract
We perform Markov chain Monte Carlo analyses to put constraints on the non-flat $\phi$CDM inflation model using Planck 2015 cosmic microwave background (CMB) anisotropy data and baryon acoustic oscillation distance measurements. The $\phi$CDM model is a consistent dynamical dark energy model in which the currently accelerating cosmological expansion is powered by a scalar field $\phi$ slowly rolling down an inverse power-law potential energy density. We also use a physically consistent power spectrum for energy density inhomogeneities in this non-flat model. We find that, like the closed-$\Lambda$CDM and closed-XCDM models, the closed-$\phi$CDM model provides a better fit to the lower multipole region of the CMB temperature anisotropy data compared to that provided by the tilted flat-$\Lambda$CDM model. Also, like the other closed models, this model reduces the tension between the Planck and the weak lensing $\sigma_8$ constraints. However, the higher multipole region of the CMB temperature anisotropy data are better fit by the tilted flat-$\Lambda$CDM model than by the closed models.
Forward citations
Cited by 3 Pith papers
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Updated observational constraints on $\phi$CDM dynamical dark energy cosmological models
Updated φCDM constraints from Planck 2018 + non-CMB data find α=0.055±0.041, consistent with a cosmological constant and only mildly favoring evolving quintessence.
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In three new w(z)CDM parametrizations, Planck CMB plus non-CMB data favor evolving dark energy over a cosmological constant at roughly 2 sigma when the Planck lensing anomaly parameter is fixed, and at roughly 1 sigma...
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Using SPTpol, Planck 2015, and non-CMB data to constrain tilted spatially-flat and untilted non-flat $\Lambda$CDM, XCDM, and $\phi$CDM dark energy inflation cosmologies
Joint constraints from SPTpol, Planck 2015, and non-CMB data in six dark energy cosmologies find no strong data tension and continue to favor spatially closed universes over flat ones.
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