The Lagrangian and Hamiltonian Aspects of the Electrodynamic Vacuum-Field Theory Models
Nikolai N. Bogolubov Jr., Denis Blackmore, and Anatolij K., Prykarpatsky

TL;DR
This paper explores the fundamental principles of electrodynamics, introduces a vacuum field theory approach, and revisits classical and quantum aspects of electromagnetic and particle dynamics, offering new interpretations and models.
Contribution
It presents a novel vacuum field theory framework for classical electrodynamics, deriving new explanations for special relativity and analyzing charged particle and string models.
Findings
Derived main special relativity relations from vacuum field theory
Reinterpreted classical Maxwell equations using the vacuum approach
Analyzed charge particle radiation and topological magnetic effects
Abstract
We review the modern classical electrodynamics problems and present the related main fundamental principles characterizing the electrodynamical vacuum-field structure. We analyze the models of the vacuum field medium and charged point particle dynamics using the developed field theory concepts. There is also described a new approach to the classical Maxwell theory based on the derived and newly interpreted basic equations making use of the vacuum field theory approach. In particular, there are obtained the main classical special relativity theory relations and their new explanations. The well known Feynman approach to Maxwell electromagnetic equations and the Lorentz type force derivation is also discussed in detail. A related charged point particle dynamics and a hadronic string model analysis is also presented. We also revisited and reanalyzed the classical Lorentz force expression in…
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Taxonomy
TopicsQuantum Mechanics and Applications · Quantum and Classical Electrodynamics · Quantum Electrodynamics and Casimir Effect
