Resilient Thermodynamic Elastic Boundary Theory and Bulk Cavitation Dynamics

The Resilient Thermodynamic Elastic Boundary Theory (RTEBT) introduces a novel framework that abandons the traditional rigid cosmic grid by incorporating an extrinsic curvature term ($K$) and surface tension ($\\sigma$) into standard spacetime mathematics. This approach unifies the macroscopic expansion of dark energy with the localized attractive mechanics of gravity and dark matter, framing reality as a resilient structure of pressurized information spheres. Core mechanisms detailed in this work include Grid Multiplication, where quantized space metabolizes ambient entropy under vacuum pressure ($\\Lambda$) to heal geometric fractures, alongside elastic boundary formulations that explain strong nuclear binding, color confinement, and harmonic node interactions within quantum systems.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-21
DOI
https://doi.org/10.5281/zenodo.22870516
Primary Topic
Statistical Mechanics and Entropy
Type
preprint
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Resilient Thermodynamic Elastic Boundary Theory and Bulk Cavitation Dynamics

Joshua Johnathan Chung
Zenodo (CERN European Organization for Nuclear Research)
Statistical Mechanics and Entropy
preprint

Resilient Thermodynamic Elastic Boundary Theory and Bulk Cavitation Dynamics

Joshua Johnathan Chung
preprint en

Abstract

The Resilient Thermodynamic Elastic Boundary Theory (RTEBT) introduces a novel framework that abandons the traditional rigid cosmic grid by incorporating an extrinsic curvature term ($K$) and surface tension ($\sigma$) into standard spacetime mathematics. This approach unifies the macroscopic expansion of dark energy with the localized attractive mechanics of gravity and dark matter, framing reality as a resilient structure of pressurized information spheres. Core mechanisms detailed in this work include Grid Multiplication, where quantized space metabolizes ambient entropy under vacuum pressure ($\Lambda$) to heal geometric fractures, alongside elastic boundary formulations that explain strong nuclear binding, color confinement, and harmonic node interactions within quantum systems.

Zenodo (CERN European Organization for Nuclear Research)
Statistical Mechanics and Entropy
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Resilient Thermodynamic Elastic Boundary Theory and Bulk Cavitation Dynamics — Joshua Johnathan Chung · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS