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A Rheological Approach to the Viscous Fermionic Vacuum Condensate. VIII. Comparison of the Viscoelastic Fermionic Condensate Model with Voyager Probe Observational Data
2026-08-25
This paper presents a comparative analysis between the parameters of the Viscoelastic Fermionic Condensate (VFC) model and empirical data obtained by the Voyager spacecraft at the heliospheric boundary and within the pristine interstellar medium (ISM). We demonstrate a mechanism for the dynamical screening of modified MOND-like acceleration in high-density baryonic regions, ensuring a seamless transition to Newtonian mechanics. Furthermore, using the precise kinematic viscosity invariant of the vacuum substrate, we calculate the Kolmogorov-Shlyapik turbulence spectrum for plasma density fluctuations. The calculated dissipation scale and critical cutoff frequency show absolute convergence with the physical limits of interstellar wind dynamics, providing a deterministic fluid-mechanical foundation for the observed spectral lag without invoking dark components.
Ссылка для цитирования:
Shlyapik A. 2026. A Rheological Approach to the Viscous Fermionic Vacuum Condensate. VIII. Comparison of the Viscoelastic Fermionic Condensate Model with Voyager Probe Observational Data. PREPRINTS.RU. https://doi.org/10.24108/preprints-3116242
Список литературы
1. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate (2026). Journal of Experimental and Theoretical Physics, accepted. Manuscript ID: JETP2660290Shlyapik.
2. A. Shlyapik, Rheological Approach to the Viscous Fermionic Vacuum Condensate. II. Viscous Electrodynamics (2026). Journal of Experimental and Theoretical Physics, accepted. Manuscript ID: JETP2660315Shlyapik.
3. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate. III. Rheological Nature of Galactic Rotation Curves: Eliminating Dark Matter via ψ-Condensate Viscosity (2026). Journal of Experimental and Theoretical Physics, accepted. Manuscript ID: JETP2660330Shlyapik.
4. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate. IV. Relativistic Pericenter Precession of Mercury via ψ-Condensate Drag (2026). Journal of Experimental and Theoretical Physics, Under Review.
5. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate. V. Dissipative Dynamics of Gravitational Waves and Rheological Density Limits and Black Hole Shadows in the Viscous Condensate Model (2026). Journal of Experimental and Theoretical Physics, Under Review.