Magnetic Fields as Dipole Contrast to Electric Current's Unidirectional Flux: A Dataset-Driven Reexamination
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Maxwell’s equations (∇ × B = μ₀ J, ∇·B = 0) describe electric current as generating a magnetic field in concentric loops, precluding magnetic monopoles. This paper proposes that current, as a constrained unidirectional flux, acts as a definitional attempt at a singular state, with the magnetic field as the inevitable dipole contrast due to the impossibility of isolated poles. Grounded in standard electromagnetic theory, we show current’s near-lossless power (e.g., superconductors) arises from flux dynamics, not consumptive substance, aligning with QED and thermodynamics. The field’s concentric loops (B = μ₀ I / (2π r)) are nature’s adjustment to the paradox—contrast ringing around, as no monopole can persist without its counterpole. We analyze datasets from high-current experiments (e.g., ITER tokamak) and propose new measurements to detect oscillatory deviations in fields, indicating contrast-driven dynamics. This reframing aligns with a broader unifying framework (Perspective Theory),



