From Particulate Dark Matter to Superfluid Spacetime: A Hydrodynamic Resolution to Galactic Dynamics and Observational Anomalies (2023–2025)

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Autore principale: Gallyamov, Pavel
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Pubblicazione: Zenodo 2026
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author Gallyamov, Pavel
author_facet Gallyamov, Pavel
contents <p>The Standard Cosmological Model ($\Lambda$CDM) has provided a robust framework for understanding large-scale structure, yet it faces an deepening epistemological crisis on galactic and sub-galactic scales. The defining experimental results of 2024 and 2025—specifically the null detection of WIMPs by the LUX-ZEPLIN (LZ) and XENONnT experiments and the observation of fully evolved galaxies at $z > 10$by JWST —suggest that the "dark sector" may not consist of collisionless particles. In this paper, we propose a paradigm shift from a corpuscular description of dark matter to a hydrodynamic description of the vacuum itself. We posit that the physical vacuum functions as a superfluid Bose-Einstein condensate described by the Logarithmic Schrödinger Equation (LogSE). We demonstrate that this framework naturally recovers the baryonic Tully-Fisher relation ($M_b \propto v^4$) and flat rotation curves as thermodynamic equations of state, without requiring hidden mass. Furthermore, we show that superfluid hydrodynamics provides a unified solution to recent tensions, including the "impossible" early galaxy formation (interpreted here as vacuum phase transitions), the gravitational anomalies in wide binaries (Gaia DR3), and the anomalous collision velocity of the "El Gordo" cluster.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18375889
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publishDate 2026
publisher Zenodo
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spellingShingle From Particulate Dark Matter to Superfluid Spacetime: A Hydrodynamic Resolution to Galactic Dynamics and Observational Anomalies (2023–2025)
Gallyamov, Pavel
Dark Matter
Superfluid Vacuum Theory
Logarithmic Schrödinger Equation
Galactic Rotation Curves
Tully-Fisher Relation
JWST Anomalies
LUX-ZEPLIN
Quantum Hydrodynamics
<p>The Standard Cosmological Model ($\Lambda$CDM) has provided a robust framework for understanding large-scale structure, yet it faces an deepening epistemological crisis on galactic and sub-galactic scales. The defining experimental results of 2024 and 2025—specifically the null detection of WIMPs by the LUX-ZEPLIN (LZ) and XENONnT experiments and the observation of fully evolved galaxies at $z > 10$by JWST —suggest that the "dark sector" may not consist of collisionless particles. In this paper, we propose a paradigm shift from a corpuscular description of dark matter to a hydrodynamic description of the vacuum itself. We posit that the physical vacuum functions as a superfluid Bose-Einstein condensate described by the Logarithmic Schrödinger Equation (LogSE). We demonstrate that this framework naturally recovers the baryonic Tully-Fisher relation ($M_b \propto v^4$) and flat rotation curves as thermodynamic equations of state, without requiring hidden mass. Furthermore, we show that superfluid hydrodynamics provides a unified solution to recent tensions, including the "impossible" early galaxy formation (interpreted here as vacuum phase transitions), the gravitational anomalies in wide binaries (Gaia DR3), and the anomalous collision velocity of the "El Gordo" cluster.</p>
title From Particulate Dark Matter to Superfluid Spacetime: A Hydrodynamic Resolution to Galactic Dynamics and Observational Anomalies (2023–2025)
topic Dark Matter
Superfluid Vacuum Theory
Logarithmic Schrödinger Equation
Galactic Rotation Curves
Tully-Fisher Relation
JWST Anomalies
LUX-ZEPLIN
Quantum Hydrodynamics
url https://doi.org/10.5281/zenodo.18375889