Toward a Unified Ontology of the Collective Vacuum Model

his work develops a unified ontological framework for the Collective Vacuum Model (CVM), starting from the observed charged-lepton mass hierarchy and extending toward a common geometric and topological interpretation of leptons, baryons, quark families, gauge sectors, dark matter candidates, and the emergence of local Lorentz structure. The model combines a localized (3+1)-dimensional observable sector embedded in a higher-dimensional collective field, a (CP^1) spinorial structure for leptonic and weak degrees of freedom, (SU(3)) winding for baryonic topology, and a BCC-like microscopic organization of the observable vacuum. The framework distinguishes baryonic winding from electric charge, treats mass as localized field energy, and interprets the three quark generations as a topological-sector analogue of the same family geometry that organizes the charged-lepton hierarchy. Several consistency calculations are presented, including suppression of low-order BCC anisotropy, emergence of the Dirac/Clifford structure, localization of fermionic and gauge zero modes on a finite-width phase boundary, Skyrme-type stabilization of baryonic configurations, (CP^1\subset CP^2) deformation tests, and the appearance of an additional (SU(2)\times U(1))-sensitive channel in the third quark generation. The work does not claim a derivation of the Standard Model or quantum gravity. Its purpose is to show that a broad set of apparently separate particle-physics structures can be organized within one coherent field-theoretic ontology and to identify specific mathematical problems that can be tested independently in future work.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-24
DOI
https://doi.org/10.5281/zenodo.22942190
Primary Topic
International Science and Diplomacy
Type
preprint
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preprint

Toward a Unified Ontology of the Collective Vacuum Model

Vytautas Gatelis
Zenodo (CERN European Organization for Nuclear Research)
International Science and Diplomacy
preprint

Toward a Unified Ontology of the Collective Vacuum Model

Vytautas Gatelis
preprint en

Abstract

his work develops a unified ontological framework for the Collective Vacuum Model (CVM), starting from the observed charged-lepton mass hierarchy and extending toward a common geometric and topological interpretation of leptons, baryons, quark families, gauge sectors, dark matter candidates, and the emergence of local Lorentz structure. The model combines a localized (3+1)-dimensional observable sector embedded in a higher-dimensional collective field, a (CP^1) spinorial structure for leptonic and weak degrees of freedom, (SU(3)) winding for baryonic topology, and a BCC-like microscopic organization of the observable vacuum. The framework distinguishes baryonic winding from electric charge, treats mass as localized field energy, and interprets the three quark generations as a topological-sector analogue of the same family geometry that organizes the charged-lepton hierarchy. Several consistency calculations are presented, including suppression of low-order BCC anisotropy, emergence of the Dirac/Clifford structure, localization of fermionic and gauge zero modes on a finite-width phase boundary, Skyrme-type stabilization of baryonic configurations, (CP^1\subset CP^2) deformation tests, and the appearance of an additional (SU(2)\times U(1))-sensitive channel in the third quark generation. The work does not claim a derivation of the Standard Model or quantum gravity. Its purpose is to show that a broad set of apparently separate particle-physics structures can be organized within one coherent field-theoretic ontology and to identify specific mathematical problems that can be tested independently in future work.

Zenodo (CERN European Organization for Nuclear Research)
Peace, Justice and strong institutions
International Science and Diplomacy
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