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June 5, 20260 citationsOpen Access

Gravitational Lensing as a Refractive Index Gradient in a Stationary Hexagonal Close-Packed Lattice

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EMEfim Sergeevich Markov

Key Points

  • This research aims to redefine the phenomenon of gravitational lensing using a discrete-mechanical framework instead of traditional General Relativity.
  • Developed a model of spatial vacuum as a hexagonal close-packed lattice with invariant coordination profile Z=12.
  • Utilized a Dynamic Electro-Leeway Tensor to replace continuous metric tensors, analyzing the effects of baryonic charge concentrations.
  • Conducted a multi-variable Taylor series expansion to connect discrete optical mechanics to classic principles such as Fermat's principle.
  • Demonstrated that the presence of massive baryonic charge causes localized density increases, leading to a decay in electromagnetic wave packet speed.
  • Proved that the bending of light paths arises from a non-linear refraction gradient rather than from curved spacetime.
  • Derived the Einstein deflection angle from first principles, eliminating the usual geometric interpretation of gravitational lensing.

Abstract

The deflection of light by massive astronomical bodies - conventionally interpreted within General Relativity as a geometric bending of a continuous spacetime manifold - is mathematically re-examined here within a strict discrete-mechanical framework. We model the spatial vacuum as a stationary, rigid Hexagonal Close-Packed (3HCP) discrete space crystal of an invariant coordination profile Z = 12. By replacing continuous metric tensors with a localized Dynamic Electro-Leeway Tensor Luv, we demonstrate that the presence of massive baryonic charge concentrations induces a hydrostatic compaction of the adjacent lattice cells, scaling their local capacity registers up toward the limit Llimit = 256. This localized density increase systematically contracts the sub-nodal clearance paths, causing a proportional decay in the propagation velocity of electromagnetic wave packets (clocal 0). The apparent bending of light paths emerges not from a curved vacuum void, but as a physical, non-linear refraction gradient across the varying density sheets of the spatial crystal. This framework derives the exact Einstein deflection angle theta = 4GM/c2R purely from first-principles discrete optical mechanics, effectively stripping the geometric mystique from gravitational lensing. Creative Commons Attribution Non Commercial No Derivatives 4.0 International

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Cite This Study

Efim Sergeevich Markov (2026) studied this question.

synapsesocial.com/papers/6a22698b763171746d54818dhttps://doi.org/10.5281/zenodo.20531365
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