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June 1, 20260 citationsOpen Access

Binary Field Theory: Unifying Macroscopic and Microscopic Rotational Phenomena via Field Vortical Effects

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ZLzhongqiang Liu

Key Points

  • The aim is to present Binary Field Theory as a framework unifying macroscopic and microscopic rotational phenomena through field interactions.
  • Introduced concepts of Source Weight, Field Resistance Coefficient, and Stability Inequality for orbital stability analysis.
  • Examined vortical rotation as a result of real-virtual field superposition.
  • Applied the theory to cosmological models, focusing on galactic centers and field dynamics.
  • Established that vortical rotation results from the Field Vortical Effect, removing the need for primordial angular momentum.
  • Demonstrated galactic centers function as local field sinks in the universe's structure, maintaining equilibrium.
  • Proposed the Black Hole Reversal Mechanism, suggesting a transition from singularity to diffuse stellar states during maximal accretion.

Abstract

Contemporary physics faces a trilemma: the incompleteness of Newtonian N-body solutions, the ad hoc nature of dark sector hypotheses, and the measurement problem in quantum mechanics. This paper proposes the Binary Field Theory (BFT), positing that the universe is not composed of discrete particles in empty space, but is a unified manifestation of interacting Real Fields (Φᵣ) and Virtual Fields (Φᵥ). By introducing the Source Weight (Sᵢ), Field Resistance Coefficient (ξ), and Stability Inequality (1/4 < S₂/S₁ < 1/3), we provide a deterministic mechanism for orbital stability. We further demonstrate that vortical rotation is an inevitable consequence of real-virtual field superposition—the Field Vortical Effect—eliminating the need for primordial angular momentum assumptions. Applying this framework to cosmology, we argue that galactic centers act as local field sinks, while the Primal Field (Ψ₀ ≡ 1) maintains global equilibrium through a Black Hole Reversal Mechanism, where maximal accretion triggers a phase transition from singularity back to diffuse stellar states. This work offers a unified substrate for gravitation, quantum observation, and cosmic topology.

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Cite This Study

zhongqiang Liu (2026) studied this question.

synapsesocial.com/papers/6a1d226d02fbce91306381e0https://doi.org/10.5281/zenodo.20459669
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