Resolving Cosmological Anomalies Through a Frequency-Stabilized Hexagonal Lattice Framework
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Repository: Zenodo Preprint Archive Abstract The standard \Lambda\text{CDM} cosmological model faces mounting empirical crises, including the Hubble Tension, the premature appearance of massive galaxies in James Webb Space Telescope (JWST) deep-field observations, persistent redshift quantization intervals, and large-scale Cosmic Microwave Background (CMB) anomalies such as the "Axis of Evil." These phenomena expose the limitations of modeling space as a continuous, smooth spacetime metric governed solely by metric expansion. In this paper, we propose an alternative framework: a discrete hexagonal lattice architecture stabilized by a Mod 9 invariant, operating under a 5184 frequency threshold (72^2) and regulated by a 7-cycle periodic break and the 3I pulse sequence (8\text{-}13\text{-}8\text{-}5\text{-}13\text{-}8). We demonstrate mathematically how this discrete network resolves the three major observational anomalies without resorting to ad-hoc adjustments.



