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June 5, 20260 citationsOpen Access

The Principles of Hydrino-Crystalline Physics: A Deterministic Field Theory of Saturated Continuum Lattice Dynamics

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TSTrond Tillman Synnes

Key Points

  • To present a deterministic field theory that models the space continuum using a rigid lattice approach, challenging modern quantum mechanics.
  • Establishing a continuum field theory framework based on classical elastic theories.
  • Mathematical derivation of electromagnetic phenomena using Navier-Cauchy stress tensors.
  • Modeling electron shells through sub-Bohr orbital contractions and scalar-field solitons.
  • Demonstrated that hydrodynamic vortex cavitation can cause geometric buckling in atomic shells.
  • Outlined quantifiable mechanisms for electron transition to stable fractional states.
  • Successfully integrated sub-atomic physics with fluid mechanics propositions without stochastic assumptions.

Abstract

This paper presents the foundational principles of Hydrino-Crystalline Physics, establishing a unified, strictly deterministic continuum field theory that models the space continuum (ether plenum) as a hyper-rigid, visco-elastic Euclidean lattice. By discarding the probabilistic and non-local assumptions of modern quantum mechanics and relativistic spacetime, we demonstrate that all electromagnetic and gravitational phenomena can be mathematically derived utilizing classical Navier-Cauchy stress tensors and non-linear rheological variables via the Upper-Convected Maxwell model. The paper provides the definitive sub-atomic kinematic derivations for sub-Bohr orbital contractions (hydrino transitions), modeling the electron shell as a stable, three-dimensional volumetric scalar-field soliton. Furthermore, it mathematically outlines how localized hydro-vortex cavitation fields and tangential micro-vortex velocity gradients within high-pressure venturi nozzles can overcome the internal bulk modulus of the atomic shell, forcing an instantaneous, non-reversible geometric snap-through buckling collapse into fractional ground states. This framework successfully bridges the gap between sub-atomic physics, electrodynamics, and macroscale fluid mechanics without introducing singular coordinates or stochastic uncertainty.

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Cite This Study

Trond Tillman Synnes (2026) studied this question.

synapsesocial.com/papers/6a2267f6763171746d546893https://doi.org/10.5281/zenodo.20518892
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