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March 12, 20260 citationsOpen Access

Z4DP III: Solar System Dynamics - A Hydrodynamic Alternative to the Evolution of the Ecliptic Plane

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PKPavel Konecny

Key Points

  • The research aims to provide a new framework for understanding solar system dynamics and related anomalies using hydrodynamic principles.
  • Developed a hydrodynamic model based on the Vortex-Sink equation.
  • Tested the model on perihelion precession and flyby anomalies of spacecraft.
  • Applied continuum compression gradients and transverse momentum transfer for predictions.
  • Achieved >99% accuracy in predicting perihelion precession of inner planets.
  • Provided precise predictive capability (+13.44 mm/s) for NEAR Shoemaker spacecraft acceleration versus measurements (+13.46 mm/s).
  • Analyzed implications of the 60° ecliptic tilt concerning cosmological flow.

Abstract

This paper presents an alternative hydrodynamic framework for modeling the dynamics of the solar system and astrodynamical anomalies using the unified Vortex-Sink (Z4DP) equation. In the proposed approach, space is modeled as a compressible superfluid vacuum, where central sinks and their rotation naturally form macroscopic vortices (e. g. , the ecliptic plane). The predictive capability of the model is empirically tested on two independent phenomena. First, it demonstrates a >99% match with the observed secular perihelion precession of the inner planets purely by applying a nonlinear continuum compression gradient (3 (v/c) ²). Second, it provides an exact analytical solution for unexplained flyby anomalies. By applying transverse momentum transfer via the entrainment parameter K and an exponential vacuum compression profile (n=5. 63) derived independently from GNSS satellites, the model predicts the anomalous acceleration of the NEAR Shoemaker spacecraft with absolute precision (+13. 44 mm/s predicted vs. +13. 46 mm/s measured by NASA). The paper further analyzes long-term orbital stabilization and the cosmological implications of the 60° ecliptic tilt relative to the galactic continuum flow.

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Cite This Study

Pavel Konecny (2026) studied this question.

synapsesocial.com/papers/69b2585696eeacc4fcec7d80https://doi.org/10.5281/zenodo.18917101
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