TURBULENT VORTONS AS EMERGENT ELEMENTARY PARTICLES: THE HYDRODYNAMIC ORIGIN OF STANDARD MODEL SYMMETRIES VIA RESIDUAL COMPACTIFICATION
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| Natura: | Recurso digital |
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Zenodo
2026
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| _version_ | 1866901402943488000 |
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| author | Aksman, Michael |
| author_facet | Aksman, Michael |
| contents | <p>The Standard Model relies on the empirically successful but unexplained gauge group SU(3)_c × SU(2)_L × U(1)_Y. We propose that these symmetries emerge dynamically from the hydrodynamics of a turbulent primordial fluid vacuum. Building on the fluid-vacuum model with advected nonlinear Maxwell equations [Aksman, 2025], we identify vortons, singular, closed-loop vortex filaments as the fundamental topological excitations. We argue that catastrophic instability of turbulence in dimensions D > 3 triggers "Hydrodynamic Compactification," collapsing extra dimensions until residual compact geometries stabilize vortons against reconnection and decay. The observed gauge symmetries are the topological survivors of this process: U(1) from axial filament stability, SU(2)_L from chiral arrest in twisted residuals, and SU(3)_c from the minimal Borromean linking required for immortal composite structures. This framework unifies spacetime geometry and internal gauge symmetries as consequences of turbulent stability conditions in the early universe.</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_18305967 |
| institution | Zenodo |
| language | |
| publishDate | 2026 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | TURBULENT VORTONS AS EMERGENT ELEMENTARY PARTICLES: THE HYDRODYNAMIC ORIGIN OF STANDARD MODEL SYMMETRIES VIA RESIDUAL COMPACTIFICATION Aksman, Michael <p>The Standard Model relies on the empirically successful but unexplained gauge group SU(3)_c × SU(2)_L × U(1)_Y. We propose that these symmetries emerge dynamically from the hydrodynamics of a turbulent primordial fluid vacuum. Building on the fluid-vacuum model with advected nonlinear Maxwell equations [Aksman, 2025], we identify vortons, singular, closed-loop vortex filaments as the fundamental topological excitations. We argue that catastrophic instability of turbulence in dimensions D > 3 triggers "Hydrodynamic Compactification," collapsing extra dimensions until residual compact geometries stabilize vortons against reconnection and decay. The observed gauge symmetries are the topological survivors of this process: U(1) from axial filament stability, SU(2)_L from chiral arrest in twisted residuals, and SU(3)_c from the minimal Borromean linking required for immortal composite structures. This framework unifies spacetime geometry and internal gauge symmetries as consequences of turbulent stability conditions in the early universe.</p> |
| title | TURBULENT VORTONS AS EMERGENT ELEMENTARY PARTICLES: THE HYDRODYNAMIC ORIGIN OF STANDARD MODEL SYMMETRIES VIA RESIDUAL COMPACTIFICATION |
| url | https://doi.org/10.5281/zenodo.18305967 |