Physics & Spacepreprint2026-08-15

The Conformal Thermodynamic Cycle: Eradicating Singularities, the Information Loss Paradox, and Cosmic Inflation via Holographic Protocol Handovers

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Abstract

This paper addresses the pathological infinities of the early universe by applying the thermodynamic boundary constraints of the Tri-Scale topology to the primordial cosmological timeline. By discarding the assumption of unbounded thermal capacity and treating the initial expansion as a mathematically bounded state, we provide a deterministic framework that resolves the classical initial-value singularity of the Big Bang. Key Breakthroughs: Non-Lipschitz Initial Conditions: Replaces the singular $t=0$ boundary condition with a non-Lipschitz fractional scaling law (homologous to Norton's Dome), allowing for spontaneous, deterministic symmetry breaking without requiring infinite temperature or infinite density. Bounded Thermal Capacity: Utilizes the $N=4$ particle spectrum truncation established in previous work to strictly cap the available thermodynamic degrees of freedom, formally preventing the formation of an infinite-entropy thermal singularity. Picard-Lindelöf Resolution: Demonstrates how the failure of the Lipschitz continuity condition at the absolute geometric minimum ($L_P$) allows a continuous scale factor to emerge deterministically from a finite quiescent state, satisfying local energy conservation without requiring ad-hoc inflationary potentials. This formulation demonstrates that the universe did not originate from an unphysical mathematical point of infinite density, but rather emerged via a continuous, boundary-regulated thermodynamic phase transition.

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View paper (DOI)Open access versionOpenAlexZenodo (CERN European Organization for Nuclear Research)Published 2026-08-15

Authors: Alex Maestrini