Thermal History of the S3 Field Microtexture

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Autor principal: Boudjerada, Mustafa
Formato: Recurso digital
Publicado: Zenodo 2025
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author Boudjerada, Mustafa
author_facet Boudjerada, Mustafa
contents <div dir="ltr"> <p>This paper proposes a cosmological thermal history model for the microscopic "ripple" sector of the S³-Field Framework. It provides the physical mechanism for the transient gravitational enhancement ("Turbo" gear) required to explain the anomalous abundance of massive galaxies at high redshift.</p> <p>The study establishes the thermodynamic conditions under which the fundamental field deviates from General Relativity:</p> <ol> <li> <p><strong>The Mass-Gap Coincidence:</strong> The paper identifies that the photon temperature at Cosmic Dawn (<span>$z \approx 20$</span>) corresponds naturally to the theory's intrinsic ripple mass scale (<span>$m_{\text{rip}} \approx 1$</span> meV).</p> </li> <li> <p><strong>Critical Crossover Mechanism:</strong> We hypothesize that the universe cooling through this mass threshold (<span>$T \sim m_{\text{rip}}$</span>) triggers a susceptibility divergence in the scalar microtexture. This results in a transient dip in vacuum stiffness (<span>$Z_s < 1$</span>), temporarily boosting the effective gravitational strength.</p> </li> <li> <p><strong>Strict Neff Compliance (Split-Equilibrium):</strong> To strictly satisfy Planck 2018 radiation constraints, the model identifies a "Split-Equilibrium" regime. The scalar sector maintains Kinetic Equilibrium (tracking photon temperature) to trigger the transition, but remains in Chemical Non-Equilibrium (dilute number density, <span>$n_{\text{rip}} \ll n_{\gamma}$</span>). This ensures that while the temperature triggers the physics, the energy density contribution remains negligible, preventing any violation of the effective number of neutrino species (<span>$N_{\text{eff}}$</span>).</p> </li> </ol> <p><strong>Key Prediction:</strong> The theory predicts that the "Impossibly Early Galaxies" observed by JWST are a direct signature of the dark sector undergoing a non-relativistic phase transition at <span>$T \approx 1$</span> meV.</p> </div> <p></p>
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publishDate 2025
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spellingShingle Thermal History of the S3 Field Microtexture
Boudjerada, Mustafa
Cosmic Dawn
Thermal History
Critical Phase Transition
Dark Sector Physics
Neff Constraints
JWST Anomalies
Split Equilibrium
<div dir="ltr"> <p>This paper proposes a cosmological thermal history model for the microscopic "ripple" sector of the S³-Field Framework. It provides the physical mechanism for the transient gravitational enhancement ("Turbo" gear) required to explain the anomalous abundance of massive galaxies at high redshift.</p> <p>The study establishes the thermodynamic conditions under which the fundamental field deviates from General Relativity:</p> <ol> <li> <p><strong>The Mass-Gap Coincidence:</strong> The paper identifies that the photon temperature at Cosmic Dawn (<span>$z \approx 20$</span>) corresponds naturally to the theory's intrinsic ripple mass scale (<span>$m_{\text{rip}} \approx 1$</span> meV).</p> </li> <li> <p><strong>Critical Crossover Mechanism:</strong> We hypothesize that the universe cooling through this mass threshold (<span>$T \sim m_{\text{rip}}$</span>) triggers a susceptibility divergence in the scalar microtexture. This results in a transient dip in vacuum stiffness (<span>$Z_s < 1$</span>), temporarily boosting the effective gravitational strength.</p> </li> <li> <p><strong>Strict Neff Compliance (Split-Equilibrium):</strong> To strictly satisfy Planck 2018 radiation constraints, the model identifies a "Split-Equilibrium" regime. The scalar sector maintains Kinetic Equilibrium (tracking photon temperature) to trigger the transition, but remains in Chemical Non-Equilibrium (dilute number density, <span>$n_{\text{rip}} \ll n_{\gamma}$</span>). This ensures that while the temperature triggers the physics, the energy density contribution remains negligible, preventing any violation of the effective number of neutrino species (<span>$N_{\text{eff}}$</span>).</p> </li> </ol> <p><strong>Key Prediction:</strong> The theory predicts that the "Impossibly Early Galaxies" observed by JWST are a direct signature of the dark sector undergoing a non-relativistic phase transition at <span>$T \approx 1$</span> meV.</p> </div> <p></p>
title Thermal History of the S3 Field Microtexture
topic Cosmic Dawn
Thermal History
Critical Phase Transition
Dark Sector Physics
Neff Constraints
JWST Anomalies
Split Equilibrium
url https://doi.org/10.5281/zenodo.18070142