Electromagnetic wave propagation in general Kasner-like metrics
Brett Bochner

TL;DR
This paper investigates electromagnetic wave behavior in anisotropic Kasner cosmologies, revealing gravitationally-induced coupling of electric and magnetic fields, deriving higher-order wave equations, and analyzing wave propagation and phase velocity near singularities.
Contribution
It derives coupled second-order and uncoupled fourth-order wave equations for electromagnetic fields in Kasner metrics, revealing gravitational coupling effects and providing exact solutions and numerical analysis.
Findings
Coupling between electric and magnetic fields is induced by anisotropy.
Exact solutions found for specific Kasner cases.
Wave phase velocity approaches zero near the initial singularity.
Abstract
The curved spacetime Maxwell equations are applied to the anisotropically expanding Kasner metrics. Using the application of vector identities we derive 2-order differential wave equations for the electromagnetic field components; through this explicit derivation, we find that the 2-order wave equations are not uncoupled for the various components (as previously assumed), but that gravitationally-induced coupling between the electric and magnetic field components is generated directly by the anisotropy of the expansion. The lack of such coupling terms in the wave equations from several prior studies may indicate a generally incomplete understanding of the evolution of electromagnetic energy in anisotropic cosmologies. Uncoupling the field components requires the derivation of a 4-order wave equation, which we obtain for Kasner-like metrics with…
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Taxonomy
TopicsCosmology and Gravitation Theories · Solar and Space Plasma Dynamics · Astrophysics and Cosmic Phenomena
