A Unified Theoretical Framework Bridging Quantum Mechanics and Planetary Dynamics

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Main Author: alberti, gianluca
Format: Recurso digital
Published: Zenodo 2025
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author alberti, gianluca
author_facet alberti, gianluca
contents <p><strong><span>Abstract</span></strong><span><br></span><span>Quantum mechanics and planetary motion have traditionally been treated as separate domains governed by distinct principles. However, recent theoretical developments suggest a deeper connection between atomic-scale diffraction phenomena and large-scale gravitational interactions. In this work, a unifying theoretical framework is proposed, deriving planetary formation and motion from fundamental quantum diffraction principles. By reinterpreting classical orbital mechanics through a diffraction-based Hamiltonian, a natural continuity is established between the quantized behavior of atomic systems and the macroscopic dynamics of celestial bodies. The model challenges the conventional role of gravity in mass accumulation and planetary formation, suggesting that diffraction principles may play a fundamental role in structuring both atomic and planetary systems. This approach provides new perspectives on fundamental forces and opens pathways for experimental validation across multiple scales. Such an interpretation profoundly reshapes both frameworks and redefines the role of electrodynamical forces in the universe.</span></p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_15228526
institution Zenodo
language
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle A Unified Theoretical Framework Bridging Quantum Mechanics and Planetary Dynamics
alberti, gianluca
Evolution, Planetary
Planetary sciences
Quantum chemistry
Quantum physics
Quantum Theory
Quantum Theory/history
Solar physics
Solar System
Solar astronomy
general relativity
gravitational fields
<p><strong><span>Abstract</span></strong><span><br></span><span>Quantum mechanics and planetary motion have traditionally been treated as separate domains governed by distinct principles. However, recent theoretical developments suggest a deeper connection between atomic-scale diffraction phenomena and large-scale gravitational interactions. In this work, a unifying theoretical framework is proposed, deriving planetary formation and motion from fundamental quantum diffraction principles. By reinterpreting classical orbital mechanics through a diffraction-based Hamiltonian, a natural continuity is established between the quantized behavior of atomic systems and the macroscopic dynamics of celestial bodies. The model challenges the conventional role of gravity in mass accumulation and planetary formation, suggesting that diffraction principles may play a fundamental role in structuring both atomic and planetary systems. This approach provides new perspectives on fundamental forces and opens pathways for experimental validation across multiple scales. Such an interpretation profoundly reshapes both frameworks and redefines the role of electrodynamical forces in the universe.</span></p>
title A Unified Theoretical Framework Bridging Quantum Mechanics and Planetary Dynamics
topic Evolution, Planetary
Planetary sciences
Quantum chemistry
Quantum physics
Quantum Theory
Quantum Theory/history
Solar physics
Solar System
Solar astronomy
general relativity
gravitational fields
url https://doi.org/10.5281/zenodo.15228526