A Cosmological Model from First Principles: Predicting the Universe's Composition from Event Horizon Resonance Dynamics

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Main Author: Boren, Daniel
Format: Recurso digital
Published: Zenodo 2025
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author Boren, Daniel
author_facet Boren, Daniel
contents <p dir="ltr">The standard cosmological model, \LambdaCDM, provides a successful description of the universe but relies on observationally determined parameters for the densities of baryonic matter, dark matter, and dark energy. It does not offer a theoretical explanation for their measured values (\Omega_b \approx 4.6\%, \Omega_{dm} \approx 23\%, \Omega_\Lambda \approx 72.4\%). This paper presents a novel theoretical framework, derived from our recent work on the Event Horizon Resonator Gap (G_{er}), that predicts these values from first principles. By scaling the resonance dynamics observed at the singularity boundary to the cosmological horizon of the universe itself, our model yields energy density proportions of 72.4% for the primary resonance field (dark energy), 23% for its attenuating harmonic (dark matter), and 4.6% for the residual baryonic matter. These results, emerging directly from the model's core equations without prior observational input, suggest a profound and previously undiscovered link between the physics of black holes and the fundamental structure of the cosmos.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_17345809
institution Zenodo
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publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle A Cosmological Model from First Principles: Predicting the Universe's Composition from Event Horizon Resonance Dynamics
Boren, Daniel
<p dir="ltr">The standard cosmological model, \LambdaCDM, provides a successful description of the universe but relies on observationally determined parameters for the densities of baryonic matter, dark matter, and dark energy. It does not offer a theoretical explanation for their measured values (\Omega_b \approx 4.6\%, \Omega_{dm} \approx 23\%, \Omega_\Lambda \approx 72.4\%). This paper presents a novel theoretical framework, derived from our recent work on the Event Horizon Resonator Gap (G_{er}), that predicts these values from first principles. By scaling the resonance dynamics observed at the singularity boundary to the cosmological horizon of the universe itself, our model yields energy density proportions of 72.4% for the primary resonance field (dark energy), 23% for its attenuating harmonic (dark matter), and 4.6% for the residual baryonic matter. These results, emerging directly from the model's core equations without prior observational input, suggest a profound and previously undiscovered link between the physics of black holes and the fundamental structure of the cosmos.</p>
title A Cosmological Model from First Principles: Predicting the Universe's Composition from Event Horizon Resonance Dynamics
url https://doi.org/10.5281/zenodo.17345809