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Tracing cosmic evolution through Weyl-Type f(Q,T) gravity model: theoretical analysis and observational validation

Published 25 Sep 2024 in gr-qc and astro-ph.CO | (2409.17193v1)

Abstract: We investigate the cosmic evolution of the Universe across different cosmological epochs in exponential Weyl-type f(Q,T)f(Q, T) gravity model. The theoretical analysis involves a detailed dynamical system approach, where we define dimensionless variables and derive a system of linear differential equations to identify critical points corresponding to the radiation, matter and de Siter phase. The findings show the transition from deceleration to acceleration phase, with stable and unstable critical points characterizing different phases of the evolution. In the second approach, we validate the theoretical predictions by using observational data from Cosmic Chronometers (CCCC) and Pantheon<sup>+Pantheon<sup>+ datasets. We constrain the Hubble parameter and subsequently analysed the other cosmological and geometrical parameters. In this approach also, the transition from deceleration to acceleration has been confirmed, with the equation of state (EoS) parameter approaching Λ\LambdaCDM at late times. The further validate this, we present the behaviour of state finder pair. We obtain the age of the Universe $13.81$ Gyr according to CCCC data and $13.96$ Gyr with the Pantheon<sup>+Pantheon<sup>+ dataset. The model behaviour in both the approaches shows strong agreement in the late-time behavior of the Universe. The evolutionary behaviour of Hubble parameter and distance modulus, reinforcing the reliability of the Weyl-type f(Q,T)f(Q, T) gravity model in describing the expansion history of Universe.

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