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The Electrodynamic Vacuum: Relaxing the Lorenz Gauge for Novel Energy Extraction and Scalar-Longitudinal Wave Applications

2026/03/24 by Hallelujah, Paul · 1 voice
Physics and Astronomy · #Quantum and Classical Electrodynamics #Quantum Electrodynamics and Casimir Effect #Relativity and Gravitational Theory

paper · doi:10.5281/zenodo.19210674

openalex publication_date 2026/03/24 · openalex created_date 2026/03/25 · openalex updated_date 2026/07/01

Abstract

This paper explores the theoretical implications of relaxing the Lorenz gauge condition in classical electrodynamics to recover the full 16-component tensor framework. Developed through Extended Electrodynamics (EED) and Einstein-Cartan-Evans (ECE) unified field theory, the research demonstrates that the standard mathematical simplification where the divergence of the four-potential is zero artificially excludes physically active scalar and longitudinal modes. By restoring these components through a non-abelian symmetry, the paper establishes a physical mechanism for the propagation of scalar-longitudinal waves (SLWs) and their interaction with spacetime torsion. The work provides a rigorous path toward modeling the electrodynamic vacuum as a thermodynamically open system, facilitating directed energy and momentum exchange with the zero-point energy (ZPE) field. Key highlights include: Gauge Freedom Analysis: A critique of the Heaviside-Lorentz distillation and the recovery of the Stueckelberg Lagrangian. Topological Waveforms: Analysis of the Aharonov-Bohm effect as a baseline for longitudinal potential manifestations. ECE Unified Field Theory: Integration of Cartan geometry to account for spacetime torsion in electrodynamic coupling. Thermodynamic Reconceptualization: Transitioning from closed-loop transverse wave models to exergic, open-system energy extraction. Keywords: Extended Electrodynamics, ECE Theory, Lorenz Gauge, Scalar-Longitudinal Waves, Zero-Point Energy, Spacetime Torsion, Vacuum Energy, Gauge Symmetry, Stueckelberg Lagrangian, 16-component tensor.

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