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Cosmologia del Quarkbase

Un nuovo quadro per comprendere l’universo. Il quarkbase —la particella elementare completamente compatta— e un plasma-etereo a volume costante generano le linee di pressione che producono tutte le forze della natura.

Il Funzionamento dell’Universo

1.1 Fondamenti assiomatici

1.1.1 Universo finito: Il cosmo è un contenitore chiuso di volume costante, il che implica che ogni dinamica deve redistribuire materia e vuoto senza crescita indefinita.

1.1.2 Vuoto–plasma (etere occulto): Il vuoto è in realtà un plasma eterico impercettibile, mezzo di trasmissione della pressione e dell’energia. Non viene rilevato perché le sue interazioni si compensano internamente.

1.1.3 Quarkbase: Particella elementare unica, compatta e priva di cavità interne. Tutte le altre particelle sono configurazioni o assemblaggi di quarkbase.

1.1.4 Interazione per pressione: Ogni quarkbase sposta il plasma-vuoto e genera linee di pressione radiale attorno a sé, origine delle forze fondamentali.

1.2 Sviluppo teorico

1.2.1 Origine delle forze:

Secondo la Cosmologia del Quarkbase, il cosiddetto “vuoto” non è uno spazio vuoto, un’assenza nel senso stretto del termine, bensì un mezzo continuo di pressione plasmatica, ossia una sostanza dotata di proprietà plasmoidi, caratterizzata da un campo scalare reale Ψ(x, t) che descrive la densità locale di pressione del plasma eterico.

A differenza di un gas o di un fluido ideale, questo mezzo possiede un’elasticità anisotropa e una capacità di auto-organizzazione, che consentono la formazione di linee e filamenti di pressione coerenti che non si dissipano né si distribuiscono in modo omogeneo. Queste linee agiscono come canali di trasmissione del campo Ψ, in grado di curvarsi, intrecciarsi e immagazzinare energia di deformazione.

Ogni quarkbase è interpretato come una regione compatta di spostamento del plasma eterico, il cui ambiente genera un sistema di linee di pressione che si intrecciano, si torcono e vibrano con una frequenza caratteristica. Il volume globale del plasma eterico si conserva, così che le deformazioni locali indotte dai quarkbase vengono compensate da gradienti di pressione che producono attrazione o repulsione a seconda della loro fase, velocità o risonanza.

Le configurazioni stabili di tali accoppiamenti danno origine ai quark elementari, mentre le risonanze collettive tra più quarkbase generano protoni, neutroni e altre particelle. Le variazioni geometriche delle linee di pressione su larga scala generano a loro volta le forze elettromagnetiche e nucleari come effetti emergenti dello stesso campo Ψ.

Gravità: non è un’attrazione a distanza, ma una redistribuzione del plasma che spinge i corpi verso le concentrazioni di quarkbase.
Elettromagnetismo: configurazioni vibratorie del quarkbase deformano il plasma in onde di pressione (fotoni).
Forze nucleari: emergono dall’interpenetrazione e dal blocco delle linee di pressione, generando coesione (forza forte) o tensioni di equilibrio (forza debole).

1.2.2 Materia ed energia: La materia è uno stato strutturato di quarkbase. L’energia consiste in onde di pressione nel plasma. L’equivalenza E = mc² deriva dal fatto che le strutture composte di quarkbase possono disgregarsi formando onde di pressione, e viceversa.

1.2.3 Cosmologia: L’universo non si espande; ciò che percepiamo come espansione è una variazione della densità del plasma che altera la traiettoria della luce. I limiti sono regioni di compressione in cui le traiettorie si chiudono.

Formulazione minima

La teoria può essere riassunta in quattro equazioni fondamentali:

\[ \text{1. } (\nabla^2 - \lambda^{-2}) \Psi(x) = -\alpha \sum \delta(x - x_i) \quad \text{(Equazione del campo di pressione)} \] \[ \text{2. } F = -\gamma v_q \nabla \Psi \quad \text{(Forza effettiva emergente)} \] \[ \text{3. } \frac{1}{c^2} \ddot{\Psi} - \nabla^2 \Psi + \lambda^{-2} \Psi = -\alpha \sum \delta(x - x_i(t)) \quad \text{(Dinamica relativistica delle onde)} \] \[ \text{4. } \int_{V_U} \rho_p(x,t) \, d^3x + N v_q = \rho_p^{(0)} V_U \quad \text{(Conservazione globale del volume)} \]

Soluzione elementare: tipo Yukawa

La soluzione del potenziale di pressione per un quarkbase isolato nel plasma-etereo è di tipo Yukawa:

\[ \Psi(r) = \frac{\alpha}{4\pi} \frac{e^{-r/\lambda}}{r} \] \[ F(r) = \frac{\alpha \gamma v_q}{4\pi} \left( \frac{1}{r^2} + \frac{1}{\lambda r} \right) e^{-r/\lambda} \]

Queste espressioni mostrano come l’interazione tra quarkbase riproduca la forma della gravità e delle altre forze, con correzioni dovute alla lunghezza di schermatura \(\lambda\).

Fondamenti

L’universo è finito e mantiene un volume totale costante. Il plasma eterico possiede densità e comprimibilità; l’interazione tra i quarkbase e tale plasma genera un potenziale di pressione Ψ che agisce come origine emergente della gravità e delle altre forze fondamentali.

Concetti chiave

  • Conservazione globale del volume: il numero e il volume dei quarkbase e la densità del plasma sono correlati da una condizione globale di equilibrio.
  • Campo di pressione Ψ: campo scalare relativistico che soddisfa un’equazione di tipo Klein–Gordon con schermatura (lunghezza λ).
  • Forze emergenti: la forza effettiva tra i quarkbase è proporzionale al gradiente di Ψ; nel regime appropriato riproduce la legge newtoniana alle grandi distanze.

Articoli chiave

Cosmologia del Quarkbase

Documento fondamentale che definisce gli assiomi, le equazioni minime (campo Ψ, forza emergente, conservazione del volume) e propone esperimenti per la falsificazione.

La doppia fenditura nella Cosmologia del Quarkbase

Descrive come l’interferenza e la rilevazione puntuale si spieghino attraverso la densità di energia del campo e meccanismi di auto-focalizzazione non lineare (senza postulare il collasso).

Invarianza relativistica

Analisi matematica che mostra come la teoria sia coerente con esperimenti del tipo Michelson–Morley e con l’invarianza operazionale locale sotto ipotesi ragionevoli.

Invarianza relativistica e vincoli sperimentali nella Cosmologia del Quarkbase

Si dimostra che la simmetria di Lorentz emerge in modo locale ed efficace nel campo fondamentale del Quarkbase e che il modello risulta pienamente compatibile con i test sperimentali più precisi della relatività, secondo i limiti attuali della Standard-Model Extension (SME).

Riconferma dell’invarianza relativistica della Teoria del Quarkbase: analisi matematica dettagliata

Il presente lavoro costituisce una revisione e una formalizzazione matematica del quadro teorico della Cosmologia del Quarkbase, con l’obiettivo di valutare in modo rigoroso la sua compatibilità con il principio di invarianza relativistica.

Pubblicazioni

Omeñaca Prado, Carlos (2025). September 2025. The vacuum is described as a plasma-like etheric medium. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Empirical Evidence For The Existence Of An Etheric Vacuum Exhibiting Plasmatic Properties. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Demonstration Of Relativistic Invariance In Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Relativistic Invariance and Experimental Constraints on Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Reconfirmation of the Relativistic Invariance of the Theory of Quarkbase: Detailed Mathematical Analysis. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). The Vibrational Architecture of the Universe. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Quantum Entanglement in the Unified Framework of the Cosmology of the Quarkbase. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). The redshift in Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Filamentation And Supercluster Formation In A Three Phase Etheric Plasma. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Biomedical Implications of Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Hawking Radiation Revisited. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). The Cosmic Microwave Background in Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Quasars in the Framework of Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Extended Study on the Cosmic Microwave Background in Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Biomedical Applications of Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Electronic Mobility and Minimum Conductivity in Graphene. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Optical Absorption, Quantum Hall Effect, and Superconductivity in Graphene. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). A Quarkbase Cosmology Explanation of Superconductivity and Thermal Hyperconductivity in Graphene. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Explaining Quark Flavors and Masses through Quarkbase Cosmology. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Genesis Quarkbase: A New Genesis for Physics. Internet Archive. Preprint. Omeñaca Prado, Carlos (2025). Genesis Quarkbase (english): The functioning of the Universe. Internet Archive. Preprint.

Article Synopsis

Genesis Quarkbase A New Genesis for Physics A Manifesto for the Twenty-First Century

This work explains the origin of the fundamental forces — gravitational, electromagnetic, strong, and weak — as manifestations of a single governing principle: the global conservation of etheric volume. It reproduces atomic constants such as the Rydberg value and hydrogen binding energy, and introduces an alternative method of fission based on resonance of the etheric pressure field, equivalent in energy to conventional nuclear fission but founded on a different physical mechanism. It also predicts the next element in the periodic table (Z ≈ 155), derived from the quantized sequence of quarkbase closures.

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Complex Formalism in Quarkbase Cosmology: Unified Description of Gravitational, Electromagnetic, and Quantum Interactions

This research extends the QuarkBase Cosmology into the complex domain, demonstrating that the mathematical representation through complex numbers does not alter the physical foundations of the theory but rather unifies, within a single analytical structure, the gravitational, electromagnetic, and quantum phenomena. The complex formalism allows one to express in a single function, \\( \Psi(x, t) = A e^{i(\omega t - \mathbf{k}\cdot\mathbf{x})} \\), the longitudinal (pressure) and transverse (vorticity) components of the etheric plasma, simplifying differential derivatives and revealing the intrinsic nature of the field oscillations. It is shown that Maxwell’s equations can be reformulated as a complex wave equation of the etheric plasma, in which the real part represents electric pressure and the imaginary part magnetic vorticity, while the formalism strictly preserves Lorentz invariance. Finally, the framework is applied to the nucleus–electron resonance in hydrogen, deriving its coupling frequency directly from the phase conditions of the complex field and demonstrating the coherence of the QuarkBase model from the subatomic to the relativistic scale.

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Empirical evidence for the existence of an etheric vacuum exhibiting plasmatic properties

This study presents an empirical and theoretical framework supporting the ex- istence of an etheric vacuum with plasmatic characteristics, as predicted by the QuarkBase Cosmology. Using the historical parameters of Tonomura’s 1989 single-electron double-slit experiment, we reproduce the observed interference patterns under the assumption that the vacuum behaves as a continuous pres- sure field (Ψ) rather than as an empty background. The model introduces two measurable parameters—the screening length (λ) and the decoherence rate (Γφ)—which describe, respectively, the attenuation of the pressure wave through the etheric medium and the loss of coherence induced by detector coupling. Numerical simulations yield λ ≈ 5 m and Γφ ≈ 80 s−1, providing an accu- rate quantitative match to Tonomura’s recorded interference build-up while offer- ing a causal, physically interpretable mechanism. The results demonstrate that the QuarkBase formulation can reproduce the same experimental data as stan- dard quantum mechanics without invoking non-causal collapse postulates. Instead, the interference pattern arises from the redistribution of etheric pressure within a frictionless but compressible medium, suggesting that space itself possesses measurable mechanical structure.

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Quantum Entanglement in Quarkbase Cosmology

Proposes that quantum entanglement is a consequence of shared pressure channels in the plasma ether, explaining instantaneous correlations without superluminal transmission.

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The Next Electromagnetic Revolution: Maxwell’s Equations in the Framework of Quarkbase Cosmology

The Quarkbase theory reformulates the foundations of electromagnetic interaction by interpreting classical fields not as abstract entities in empty space, but as pressure distributions within a continuous, frictionless plasma that permeates the universe. In this framework, Maxwell’s equations acquire a physical substrate: they describe the reorganization of pressure lines in this hidden medium rather than mere mathematical relations among charges and currents. This reinterpretation preserves the predictive power of classical electromagnetism while providing a consistent field-based foundation for potential extensions and experimental tests.

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Simultaneous Enhancement of Electrical and Thermal Conductivity in Graphene through Excitation of the Etheric Longitudinal Mode

Within the framework of the Quarkbase Cosmology, electromagnetic and transport phenomena arise from longitudinal pressure waves in an etheric medium described by the scalar field Ψ(x, t). When an excitation in the terahertz or mid-infrared range (10–60 THz) couples resonantly to the longitudinal mode of this field, the coherence of both charge and heat carriers in graphene increases simultaneously. The predicted result is a reversible and correlated enhancement of the electrical conductivity σ and the thermal conductivity κ, a distinctive signature of the etheric longitudinal mode acting as a unifying coupling channel.

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Curvature-Tunable Absorbance in Graphene: A Quarkbase-Cosmology Prediction

Within the framework of Quarkbase Cosmology, electromagnetic propagation arises from longitu- dinal pressure waves of a frictionless etheric plasma (Ψ-field). This theory predicts that the universal optical absorbance of monolayer graphene (A ≈ πα) should vary linearly with biaxial strain or mean curvature, due to changes in the local density of etheric pressure channels that guide the propagation of light. The expected dependence is ∆A/A ≃ 10−3–10−2 per % strain. Verification of this small but measurable effect would provide a direct falsifiable test of the Quark- base description of electromagnetic phenomena as pressure dynamics in an incompressible etheric medium.

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The Quarkbase Cosmology Explanation of Superconductivity and Thermal Hyperconductivity in Graphene

This work presents a unified mechanism for superconductivity and thermal hyperconductivity in graphene within the framework of Quarkbase Cosmology (QBC), which models space as a frictionless etheric plasma governed by a scalar pressure field Ψ(x,t). In this view, graphene acts as a two-dimensional resonant cavity for Ψ, where phase coherence produces nondissipative electric currents without requiring Cooper pairing. An effective Ginzburg–Landau formulation and a Berezinskii–Kosterlitz–Thouless analysis yield critical temperatures of 1–10 K, consistent with experimental data. The same Ψ-field coherence explains graphene’s extraordinary thermal conductivity (>5000 W/m·K) as pressure-energy transport within the etheric medium. Overall, the work unifies graphene’s electrical and thermal behavior as two observable manifestations of phase and amplitude coherence in the underlying Ψ field.

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Etheric Vacuum Pressure Sensor (SEP-V1): an interferometric system for detecting and converting energy through pressure gradients of the Ψ field

The SEP-V1 proposes an experimental device capable of detecting, amplifying, or eventually converting variations in the pressure of the Ψ field into measurable changes in optical phase or intensity. This system enables the experimental validation of dynamic anisotropies in vacuum density and allows the exploration of their potential energy conversion.

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Coherent Pressure Quarkic Battery (Ψ-Cell)

This study reports the design and experimental validation of a Coherent Pressure Quarkic Battery (Ψ-Cell), a solid-state device that converts pressure fields of the etheric plasma into electric potential within multilayer graphene–dielectric structures. Exploiting the coherence of the scalar field Ψ, the system produces a voltage proportional to the pressure gradient without chemical or mechanical reactions. The prototype, comprising 500 active layers and a pressure-dependent RLC model with PLL–MPPT control, achieved 1–5 W output power, over 90 % efficiency, and excellent thermal stability (ΔT < 5 °C). These results demonstrate a new class of solid-state energy storage based on coherent vacuum pressure for ultra-low-dissipation electronics and autonomous quarkic energy systems.

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The Geometry of Galaxies

Explores how the structure of galaxies is interpreted in terms of plasma ether pressure and global volume conservation. Suggests that spiral distribution and flattening result from Ψ field stresses.

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Redshift in Quarkbase Theory

Reinterprets redshift as an effect of variations in plasma ether density and pressure wave propagation, rather than metric expansion of space.

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Superclusters in Quarkbase Theory

Presents a model for supercluster formation through redistributions of ether pressure, without invoking dark matter as the primary explanation.

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Hawking Radiation in Quarkbase Cosmology

Offers an alternative interpretation of Hawking radiation, linking it to pressure redistributions in the plasma ether around event horizons.

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Microwave Background in Quarkbase Cosmology

Explains the cosmic microwave background as an equilibrium state of the plasma ether, rather than a thermal remnant of the Big Bang. Predicts anisotropies related to pressure fluctuations.

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Quasars in Quarkbase Cosmology

Interprets quasars as high-energy resonators where ether pressure lines produce intense and persistent emissions, without requiring extreme accretion.

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CMB Expansion in Quarkbase Extended Theory

Proposes that apparent signals of cosmic expansion in the CMB are due to density variations in the plasma ether, reinterpreting observations without an inflationary Big Bang.

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Explaining Quark Flavors and Masses through Quarkbase Cosmology

It explains the structure of matter by modeling quarks as resonant systems composed of fundamental vibrating units, and provides a framework for understanding mass, flavor, and the dynamic nature of the quantum vacuum.

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Biomedical Applications

Biomedical Advances with Quarkbase Theory

Explores potential biomedical applications of the theory, including interpretations of cellular resonance, molecular dynamics, and proposals for diagnosis or therapy based on the plasma ether.

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Biomedical Applications: Cancer and Quarkbase Cosmology

Analyzes the dynamics of cancer cells from the plasma ether perspective, suggesting alternative models of proliferation and potential therapeutic research pathways.

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Previsioni e Applicazioni

Sintesi delle previsioni osservabili e degli sviluppi tecnologici potenziali derivati dal quadro teorico.

Contatto e Collaborazione

omenacaprado@gmail.com

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