The Visual Problem of High Energy Physics, Gravitation and Cosmology

Article ID

SFRPC55T

The Visual Problem of High Energy Physics, Gravitation and Cosmology

Leo G. Sapogin
Leo G. Sapogin
V. A. Dzhanibekov
V. A. Dzhanibekov
Yu. A. Ryabov
Yu. A. Ryabov
DOI

Abstract

This article describes a model of Unitary Quantum Field theory where the particle is represented as a wave packet. The frequency dispersion equation is chosen so that the packet periodically appears and disappears without form changings. The envelope of the process is identified with a conventional wave function. Equation of such a field is nonlinear and relativistically invariant. With proper adjustments, they are reduced to Dirac, Schrödinger and Hamilton-Jacobi equations. A number of new experimental effects have been predicted both for high and low energies. Fine structure constant (1/137) was determined in 1988, masses of numerous elementary particles starting from electron were evaluated in 2007 with accuracy less than 1 %.2 pentaquarks, 𝜽𝜽+barion, Higgs boson and particle 28 GeV were discovered 11 years later, all of them were evaluated with high accuracy before.

The Visual Problem of High Energy Physics, Gravitation and Cosmology

This article describes a model of Unitary Quantum Field theory where the particle is represented as a wave packet. The frequency dispersion equation is chosen so that the packet periodically appears and disappears without form changings. The envelope of the process is identified with a conventional wave function. Equation of such a field is nonlinear and relativistically invariant. With proper adjustments, they are reduced to Dirac, Schrödinger and Hamilton-Jacobi equations. A number of new experimental effects have been predicted both for high and low energies. Fine structure constant (1/137) was determined in 1988, masses of numerous elementary particles starting from electron were evaluated in 2007 with accuracy less than 1 %.2 pentaquarks, 𝜽𝜽+barion, Higgs boson and particle 28 GeV were discovered 11 years later, all of them were evaluated with high accuracy before.

Leo G. Sapogin
Leo G. Sapogin
V. A. Dzhanibekov
V. A. Dzhanibekov
Yu. A. Ryabov
Yu. A. Ryabov

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Leo G. Sapogin. 2019. “. Global Journal of Science Frontier Research – A: Physics & Space Science GJSFR-A Volume 19 (GJSFR Volume 19 Issue A2): .

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Crossref Journal DOI 10.17406/GJSFR

Print ISSN 0975-5896

e-ISSN 2249-4626

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GJSFR-A Classification: FOR Code: 020109
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The Visual Problem of High Energy Physics, Gravitation and Cosmology

Leo G. Sapogin
Leo G. Sapogin
V. A. Dzhanibekov
V. A. Dzhanibekov
Yu. A. Ryabov
Yu. A. Ryabov

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