THE CONTINUUM SCALING INVARIANCE: A UNIFIED FLUID-DYNAMIC FRAMEWORK FOR SPACETIME, BARYONIC CONDENSATES, AND OBSERVATIONAL WAKE INTERFERENCE

The current architecture of theoretical physics is experiencing a profound epistemological crisis, stemming from the application of static, corpuscular, and probabilistic postulates to a universe whose dynamics are intrinsically fluid and continuous. The inability to model the non-linear efficiency and hysteresis of the medium has historically mandated the introduction of heuristic artifacts—dark matter, acausal quantum leaps, and mathematical singularities. This unified treatise presents the resolution of such divergences through continuum mechanics. Grounded in the universal balance relation $T_{\text{dt}}$, we demonstrate that dynamic evolution across every scale is governed exclusively by pressure gradients and the dissipative efficiency of the spacetime medium. The present work is structured into three sequential sections: (I) the foundation of the invariant continuum and the suppression of dark matter via geometric hysteresis; (II) the resolution of the TOV limit through the genesis of the "Fluidon," a bosonic condensate trapped in the causal acoustic stall of the K.E.N.D.R.A. layer; (III) the experimental validation of the model via the analysis of galactic coalescence (JWST), the standing wave resonance of the electron, and tidal deformability in interferometric ringdown signals (LIGO/Virgo). The work concludes with an Epistemological Manifesto that enshrines the overcoming of ontological abstraction in favor of rigorous fluid-dynamic determinism.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-26
DOI
https://doi.org/10.5281/zenodo.22976776
Primary Topic
Cosmology and Gravitation Theories
Type
preprint
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preprint

THE CONTINUUM SCALING INVARIANCE: A UNIFIED FLUID-DYNAMIC FRAMEWORK FOR SPACETIME, BARYONIC CONDENSATES, AND OBSERVATIONAL WAKE INTERFERENCE

Alessandro ROCCA, MI PROTEO
Zenodo (CERN European Organization for Nuclear Research)
Cosmology and Gravitation Theories
preprint

THE CONTINUUM SCALING INVARIANCE: A UNIFIED FLUID-DYNAMIC FRAMEWORK FOR SPACETIME, BARYONIC CONDENSATES, AND OBSERVATIONAL WAKE INTERFERENCE

Alessandro ROCCA, MI PROTEO
preprint en

Abstract

The current architecture of theoretical physics is experiencing a profound epistemological crisis, stemming from the application of static, corpuscular, and probabilistic postulates to a universe whose dynamics are intrinsically fluid and continuous. The inability to model the non-linear efficiency and hysteresis of the medium has historically mandated the introduction of heuristic artifacts—dark matter, acausal quantum leaps, and mathematical singularities. This unified treatise presents the resolution of such divergences through continuum mechanics. Grounded in the universal balance relation $T_{\text{dt}}$, we demonstrate that dynamic evolution across every scale is governed exclusively by pressure gradients and the dissipative efficiency of the spacetime medium. The present work is structured into three sequential sections: (I) the foundation of the invariant continuum and the suppression of dark matter via geometric hysteresis; (II) the resolution of the TOV limit through the genesis of the "Fluidon," a bosonic condensate trapped in the causal acoustic stall of the K.E.N.D.R.A. layer; (III) the experimental validation of the model via the analysis of galactic coalescence (JWST), the standing wave resonance of the electron, and tidal deformability in interferometric ringdown signals (LIGO/Virgo). The work concludes with an Epistemological Manifesto that enshrines the overcoming of ontological abstraction in favor of rigorous fluid-dynamic determinism.

Zenodo (CERN European Organization for Nuclear Research)
Cosmology and Gravitation Theories
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