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Resonant Engines: A Stationary Light Background Model for Stellar and Planetary Nucleosynthesis

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Zenodo2026-07-25 更新2026-08-01 收录
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Abstract This paper introduces a paradigm shift in astrophysical modeling, moving from standard gravitational accretion frameworks to a Stationary Light Background (SLB) model. We propose that stellar and planetary bodies function as resonant engines that interface with a high-energy vacuum medium, manifesting mass and elemental profiles in situ. We introduce the Material-Geometry-Resonance (MGR) Triad—defined by discrete crystalline lattice structures, Mod 9 modular invariants, and harmonic frequency thresholding—to explain celestial evolution, including the convergence of "solar twins" as harmonic duplicates. The mechanism of element production is modeled as zonal nucleosynthesis within a macroscopic crystalline matrix, where structural instability induced by median-layer gas generation forces a gyroscopic "spark gap" discharge; this manifests macroscopically as axial precession and periodic thermal resets. Utilizing Earth and Mars as comparative case studies, we demonstrate how surface elemental distribution acts as a regulatory "choke point" for growth rates. Furthermore, we formalize the trajectory of interstellar objects, such as 3I/ATLAS, as singular "gateway" impulses within the solar resonance lattice. This framework replaces chaotic gravitational interactions with a deterministic, self-regulating geometric system, providing a precise mathematical account of planetary geophysics and stellar maturity within the constraints of discrete geometric invariants.

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Zenodo
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2026-07-14
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