The Resonance-Based Interpretation of Thermodynamics

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Autore principale: Simita Roland
Natura: Recurso digital
Lingua:inglese
Pubblicazione: Zenodo 2025
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_version_ 1866901506434793472
author Simita Roland
author_facet Simita Roland
contents <p>This theoretical study reinterprets the classical laws of thermodynamics through the principle of resonance and informational symmetry.</p> <p>It introduces a fourth law — the Simita Principle — which extends the conservation and entropy concepts into a resonance-compensated informational framework.</p> <p>The paper proposes that every energetic and material system in the universe performs self-correcting resonance balancing, preserving informational equilibrium across all scales — from atomic to galactic.</p> <p>This unified interpretation forms a bridge between classical physics and quantum information theory.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_17591134
institution Zenodo
language eng
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle The Resonance-Based Interpretation of Thermodynamics
Simita Roland
Thermodynamics
Resonance
Entropy
Information
Symmetry
Quantum physics
Self-compensation
Informational field
Simita principle
Phase quilibrium
Energy conservation
<p>This theoretical study reinterprets the classical laws of thermodynamics through the principle of resonance and informational symmetry.</p> <p>It introduces a fourth law — the Simita Principle — which extends the conservation and entropy concepts into a resonance-compensated informational framework.</p> <p>The paper proposes that every energetic and material system in the universe performs self-correcting resonance balancing, preserving informational equilibrium across all scales — from atomic to galactic.</p> <p>This unified interpretation forms a bridge between classical physics and quantum information theory.</p>
title The Resonance-Based Interpretation of Thermodynamics
topic Thermodynamics
Resonance
Entropy
Information
Symmetry
Quantum physics
Self-compensation
Informational field
Simita principle
Phase quilibrium
Energy conservation
url https://doi.org/10.5281/zenodo.17591134