Physics & Spacepreprint2026-08-05

The Hydrodynamic Topology of Nested Multiverses: Fluid Boundaries, Pressure Valves, and the Infinite Regenerative Matrix

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Abstract

This monograph expands upon the overarching macro-architecture of The Cosmological Control Board (ISBN 979-8-234-12485-2) by directly advancing the mechanical premise of multiversal intersections established in prior literature Transient Topological Intersections: Einstein-Rosen Bridges as Topological Tethers in a Nested Multiverse (https://doi.org/10.5281/zenodo.20749980). Transitioning from the prior model of unstable topological wormholes to a paradigm of thermodynamically permeable multiversal phase boundaries, this work reconceptualizes the Cosmic Microwave Background (CMB) as the thermal bath of a Parent Universe rather than a local temporal relic. Crucially, this framework is rigorously grounded in Superfluid Vacuum Theory (SVT). By defining the vacuum as a Bose-Einstein Condensate scalar field, we derive the modified Einstein field equations directly from a fundamental Action Principle. This derivation resolves apparent violations of local energy conservation by proving that multiversal flux naturally emerges as the thermodynamic back-reaction between visible metric excitations and the background Parent superfluid. The cosmos is modeled as an open, hydrodynamic system where multiversal pressure valves (white holes) inject localized kinetic exhaust to regulate vacuum stress, driving Dark Energy and resolving the Hubble Tension. Additionally, this framework applies Hydrodynamic Jeans Collapse to resolve the high-redshift (z > 10) supermassive galaxy anomalies recently observed by the James Webb Space Telescope (JWST). Ultimately, this eternal matrix operates under strict cosmological natural selection. Finally, we establish the mathematical framework for macroscopic fluid diagnostics, proving that cosmological anomalies—from Odd Radio Circles to the Boötes Void—are the direct acoustic density fluctuations of a multiversal fluid.

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View paper (DOI)Open access versionOpenAlexZenodo (CERN European Organization for Nuclear Research)Published 2026-08-05

Authors: D.H. Sundance-Kennedy