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January 22, 20260 citationsOpen Access

Potential Hydrodynamic Mechanism of Quantum Entanglement: Cumulative Jets and the Topology of Cavitational Channels

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VMVakhtang Mchedlishvili

Key Points

  • This work aims to model quantum entanglement through hydrodynamic mechanisms, specifically cumulative jets.
  • Develop deterministic model based on substratum hydrodynamics
  • Analyze cavitational channels formed by vortex collapse
  • Mathematical analysis of pressure dynamics within hydrodynamic structures
  • Cumulative jets act as terminals of entangled pairs in quantum mechanics
  • Hydrodynamic channels withstand immense background pressure while maintaining integrity
  • Model potentially resolves the EPR paradox through topological connectivity

Abstract

Quantum entanglement is traditionally interpreted as a non-local correlation between independent particles. This paper proposes a deterministic modeling of this phenomenon within the framework of Substratum Hydrodynamics (Papers I-XII). We hypothesize that an "entangled pair" may represent not two isolated entities, but the terminals of a single Cumulative Jet. Such a jet, formed during the collapse of a primary vortex, carves a stable, low-pressure cavitational channel within the Substratum. Mathematical analysis suggests that this structure maintains its integrity under the immense background pressure (10³² Pa), explaining quantum correlation as instantaneous pressure equalization within a unified physical channel. This model offers a potential resolution to the EPR paradox through topological connectivity.

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Cite This Study

Vakhtang Mchedlishvili (2026) studied this question.

synapsesocial.com/papers/6971be6b642b1836717e315dhttps://doi.org/10.5281/zenodo.18308637
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