Dark energy and accelerating cosmological evolution in a Universe with a Weylian boundary
Tiberiu Harko, Shahab Shahidi

TL;DR
This paper explores how boundary terms described by Weylian geometry influence cosmological evolution, leading to models that mimic dark energy and align well with observational data.
Contribution
It introduces a generalized gravitational framework with Weylian boundary terms, providing a geometric origin for dark energy and matching observational data.
Findings
Generalized Friedmann equations include Weyl vector contributions.
Weylian boundary models fit late-time cosmological data well.
Models reproduce predictions similar to the ΛCDM paradigm.
Abstract
We investigate the influence of boundary terms in gravitational field theories, by considering that in the Einstein-Hilbert action the boundary can be described by a non-metric Weyl-type geometry. The gravitational action and the the field equations, are thus generalized to include new geometrical terms, coming from the non-metric nature of the boundary, and depending on the Weyl vector, and its covariant derivatives. The field equations obtained within this framework generalize the standard Einstein equations by including in their mathematical structure the Weyl vector, and its covariant derivatives. As an applications of the general formalism we investigate the cosmological evolution in a flat FLRW geometry. We obtain the generalized Friedmann equations, which contain extra terms depending on the Weyl vector and its derivatives, arising due to the presence of the Weylian boundary, and…
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