The Dincer Boundary Frequency, Discrete Plenum Aggregation Quantization, and Absolute Spatial Dimension Alignment: Resolving Sub-Atomic Mass and Geometric Sieve Matrices inside the Fluid Plenum

This dataset formalizes the unified framework of the fluid plenum model, establishing the explicit mechanical derivations that govern the structural velocity, mass, and dimension of sub-atomic particles. Traditional astrophysics and quantum electrodynamics fail to solve boundary conditions at extreme compaction thresholds due to non-physical gravitational attraction dogmas and continuous wave assumptions. We resolve this by demonstrating a deterministic equivalence between macro-acceleration and etheric matrix reflection frequency (a = f), which dictates that sub-atomic force vectors converge directly to the Dincer Force-Frequency Matrix (F = m * f). Key Theoretical and Empirical Achievements Formalized in this Work: 1. The Dincer Boundary Frequency and Discrete Plenum Aggregation:We demonstrate that the upper limit of cosmic oscillation terminates strictly at the dynamic saturation threshold of the constitutive layer, locking at the Dincer Boundary Frequency (1.85193 x 10^43 Hz). Dividing this fundamental wall by integer indices (n) completely maps the discrete mass-frequency hierarchy of sub-atomic particles (f = 1.85193 x 10^43 / n), proving that inertial mass is a cumulative function of grouped plenum element clusters. 2. Absolute Spatial Dimension Alignment (The Dincer Plenum Diameter):At the base configuration where the aggregation index equals unity (n = 1), the macro-reference drag velocity of the Earth exactly merges with the fundamental plenum wavelength (299,792.458 km/s). Applying our scale-invariant differential division establishes that the absolute physical diameter of a singular plenum cell element is identical to 1.616 x 10^-35 meters, exhibiting a flawless mathematical alignment with the empirical Planck length. 3. Deconstruction of the Optical Refraction Illusion:This work mathematically proves that light traversing a dense medium does not experience physical angular bending. The dense atomic lattice acts as a geometric sieve filter, inducing a severe temporal phase delay (Delta t) across the 2-dimensional wave Cephesi matrix. To macroscopic observers, this retrospective geometric phase lag manifests as an angular refraction. 4. Resolution of Navigational Drift Anomalies:In continuous wave laser experiments, the measured speed of light represents the sequential beam intersection of consecutive incoming streams colliding with our macro-reference step. Transient single flash pulses shorter than 1 second remain entirely invisible to standard optical sensors due to the absence of subsequent intersection points. This dynamic explains and eliminates the chronic 300-meter orbital propagation drifts experienced by standard aerospace telemetry networks. These derivations provide absolute mechanical determinism for quantum structures and establish the unified parameters required for advanced autonomous propulsion shielding and asymmetric propulsion architectures. Official institutional verification contact: [email protected]

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-06
DOI
https://doi.org/10.5281/zenodo.23184305
Primary Topic
Relativity and Gravitational Theory
Type
preprint
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preprint

The Dincer Boundary Frequency, Discrete Plenum Aggregation Quantization, and Absolute Spatial Dimension Alignment: Resolving Sub-Atomic Mass and Geometric Sieve Matrices inside the Fluid Plenum

Cetin Dincer
Zenodo (CERN European Organization for Nuclear Research)
Relativity and Gravitational Theory
preprint

The Dincer Boundary Frequency, Discrete Plenum Aggregation Quantization, and Absolute Spatial Dimension Alignment: Resolving Sub-Atomic Mass and Geometric Sieve Matrices inside the Fluid Plenum

Cetin Dincer
preprint en

Abstract

This dataset formalizes the unified framework of the fluid plenum model, establishing the explicit mechanical derivations that govern the structural velocity, mass, and dimension of sub-atomic particles. Traditional astrophysics and quantum electrodynamics fail to solve boundary conditions at extreme compaction thresholds due to non-physical gravitational attraction dogmas and continuous wave assumptions. We resolve this by demonstrating a deterministic equivalence between macro-acceleration and etheric matrix reflection frequency (a = f), which dictates that sub-atomic force vectors converge directly to the Dincer Force-Frequency Matrix (F = m * f). Key Theoretical and Empirical Achievements Formalized in this Work: 1. The Dincer Boundary Frequency and Discrete Plenum Aggregation:We demonstrate that the upper limit of cosmic oscillation terminates strictly at the dynamic saturation threshold of the constitutive layer, locking at the Dincer Boundary Frequency (1.85193 x 10^43 Hz). Dividing this fundamental wall by integer indices (n) completely maps the discrete mass-frequency hierarchy of sub-atomic particles (f = 1.85193 x 10^43 / n), proving that inertial mass is a cumulative function of grouped plenum element clusters. 2. Absolute Spatial Dimension Alignment (The Dincer Plenum Diameter):At the base configuration where the aggregation index equals unity (n = 1), the macro-reference drag velocity of the Earth exactly merges with the fundamental plenum wavelength (299,792.458 km/s). Applying our scale-invariant differential division establishes that the absolute physical diameter of a singular plenum cell element is identical to 1.616 x 10^-35 meters, exhibiting a flawless mathematical alignment with the empirical Planck length. 3. Deconstruction of the Optical Refraction Illusion:This work mathematically proves that light traversing a dense medium does not experience physical angular bending. The dense atomic lattice acts as a geometric sieve filter, inducing a severe temporal phase delay (Delta t) across the 2-dimensional wave Cephesi matrix. To macroscopic observers, this retrospective geometric phase lag manifests as an angular refraction. 4. Resolution of Navigational Drift Anomalies:In continuous wave laser experiments, the measured speed of light represents the sequential beam intersection of consecutive incoming streams colliding with our macro-reference step. Transient single flash pulses shorter than 1 second remain entirely invisible to standard optical sensors due to the absence of subsequent intersection points. This dynamic explains and eliminates the chronic 300-meter orbital propagation drifts experienced by standard aerospace telemetry networks. These derivations provide absolute mechanical determinism for quantum structures and establish the unified parameters required for advanced autonomous propulsion shielding and asymmetric propulsion architectures. Official institutional verification contact: [email protected]

Zenodo (CERN European Organization for Nuclear Research)
Relativity and Gravitational Theory
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