Enregistré dans:
| Auteur principal: | |
|---|---|
| Format: | Recurso digital |
| Langue: | anglais |
| Publié: |
Zenodo
2026
|
| Sujets: | |
| Accès en ligne: | https://doi.org/10.5281/zenodo.19204682 |
| Tags: |
Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
|
| _version_ | 1866902331473264640 |
|---|---|
| author | Speckmann, Daniel |
| author_facet | Speckmann, Daniel |
| contents | <p>We present a formalized draft of the Emergent Resonant Brane (ERB) framework as a<br>speculative field-theoretic model in which a two-brane vacuum substrate generates effective<br>particle spectra, mixing observables, and stability conditions through resonant mode locking.<br>The model is organized around a single ratio parameter ξ = 3/2, interpreted as the relative<br>vacuum scale of two coupled branes, and a weak interaction scale g = 0.12.<br>We define an effective mismatch functional over rational approximants, derive a candidate<br>stability minimum at ξ = 3/2, and formulate a cavity-based Hamiltonian whose low-lying<br>modes provide an effective spectral basis. Mixing observables are defined as overlap<br>integrals of these modes and the model is assessed via likelihood and Bayesian evidence<br>against a null hypothesis.<br>The centerpiece of this work is the Global Rigidity Matrix (ERB v60), which demonstrates<br>that the simultaneous derivation of subatomic masses, neutrino mixing angles, and<br>cosmological expansion is mathematically locked — rendering independent parameter fitting<br>structurally impossible. The gravitational sector is derived from a refractive index gradient in<br>the vacuum medium (ERB v53), with Black Holes reinterpreted as total-reflection phase<br>mirrors.<br>Core falsifiable prediction: δCP ≈ 352° (to be tested at DUNE ~2030). The manuscript is<br>written as a formal research draft and is not presented as an established physical theory.</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_19204682 |
| institution | Zenodo |
| language | eng |
| publishDate | 2026 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Emergent Resonant Brane Framework - A Formal Field-Theoretic and Statistical Draft Speckmann, Daniel Emergent gauge symmetry, CKM matrix, CP violation, Jarlskog invariant, U(1) x SU(2) x SU(3), Resonant Brane Model, Flavor Clock, Whip effect, topological modes, quantum field theory, lattice simulation, numerical validation emergent gauge symmetry CKM matrix CP violation Jarlkog invariant quantum field theory Mass Hierarchy Emergent Symmetry Einstein-Field-Theory Bessel Functions Inertial Warping <p>We present a formalized draft of the Emergent Resonant Brane (ERB) framework as a<br>speculative field-theoretic model in which a two-brane vacuum substrate generates effective<br>particle spectra, mixing observables, and stability conditions through resonant mode locking.<br>The model is organized around a single ratio parameter ξ = 3/2, interpreted as the relative<br>vacuum scale of two coupled branes, and a weak interaction scale g = 0.12.<br>We define an effective mismatch functional over rational approximants, derive a candidate<br>stability minimum at ξ = 3/2, and formulate a cavity-based Hamiltonian whose low-lying<br>modes provide an effective spectral basis. Mixing observables are defined as overlap<br>integrals of these modes and the model is assessed via likelihood and Bayesian evidence<br>against a null hypothesis.<br>The centerpiece of this work is the Global Rigidity Matrix (ERB v60), which demonstrates<br>that the simultaneous derivation of subatomic masses, neutrino mixing angles, and<br>cosmological expansion is mathematically locked — rendering independent parameter fitting<br>structurally impossible. The gravitational sector is derived from a refractive index gradient in<br>the vacuum medium (ERB v53), with Black Holes reinterpreted as total-reflection phase<br>mirrors.<br>Core falsifiable prediction: δCP ≈ 352° (to be tested at DUNE ~2030). The manuscript is<br>written as a formal research draft and is not presented as an established physical theory.</p> |
| title | Emergent Resonant Brane Framework - A Formal Field-Theoretic and Statistical Draft |
| topic | Emergent gauge symmetry, CKM matrix, CP violation, Jarlskog invariant, U(1) x SU(2) x SU(3), Resonant Brane Model, Flavor Clock, Whip effect, topological modes, quantum field theory, lattice simulation, numerical validation emergent gauge symmetry CKM matrix CP violation Jarlkog invariant quantum field theory Mass Hierarchy Emergent Symmetry Einstein-Field-Theory Bessel Functions Inertial Warping |
| url | https://doi.org/10.5281/zenodo.19204682 |