Gravitational Entropy in Szekeres Class I Models
Fernando A. Piza\~na, Roberto A. Sussman, Juan Carlos Hidalgo

TL;DR
This paper tests the Clifton-Ellis-Tavakol gravitational entropy proposal in complex, less symmetric Szekeres models, demonstrating positive entropy production during structure formation in a realistic cosmological setting.
Contribution
It extends the CET gravitational entropy proposal to Szekeres Class I models, analyzing entropy production in realistic structure formation scenarios.
Findings
CET entropy production is positive during structure growth.
Positive entropy correlates with the dominance of the density growing mode.
The study validates the CET proposal in less idealized, realistic cosmological models.
Abstract
Gravitational entropy is an elusive concept. Various theoretical proposals have been presented, initially based on Penrose's Weyl Curvature Hypothesis, and variations of it. A more recent proposal by Clifton, Ellis, and Tavakol (CET) considered a novel approach by defining such entropy from a Gibbs equation constructed from an effective stress-energy tensor that emerges from the 'square root' algebraic decomposition of the Bel-Robinson tensor, the simplest divergence-less tensor related to the Weyl tensor. Since, so far all gravitational entropy proposals have been applied to highly restrictive and symmetric spacetimes, we probe in this paper the CET proposal for a class of much less idealized spactimes (the Szekeres class I models) capable of describing the joint evolution of arrays of arbitrary number of structures: overdensities and voids, all placed on selected spatial locations in…
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