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April 22, 20260 citationsOpen Access

The Vortical Radius: Resolving Black Hole Singularities through Geometric Damping of the Gravitational Constant

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DODong Hoon Oh

Key Points

  • The aim is to correct the Schwarzschild radius by introducing dynamic suppression of the gravitational constant at high densities.
  • Employs the Vortical Phase Transition model
  • Analyzes gravitational constant suppression at the event horizon
  • Derives a new horizon radius based on lattice stiffness saturation.
  • Introduces a Vortical Radius that is 50% more compact than classical predictions
  • Replaces singularities with a stable resonant state
  • Addresses the information paradox and diverging curvature.

Abstract

We propose a fundamental correction to the Schwarzschild radius by incorporating the dynamic suppression of the gravitational constant at the Planck density. Based on the Vortical Phase Transition model (Oh, 2026), we demonstrate that at the event horizon, the effective coupling undergoes a 50% suppression due to lattice stiffness saturation. This derivation yields a new horizon radius, which is exactly 50% more compact than the classical Schwarzschild prediction. This Vortical Radius replaces the mathematical singularity with a stable resonant state of finite Planckian density, providing a geometric resolution to the information paradox and infinite curvature divergence.

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Cite This Study

Dong Hoon Oh (2026) studied this question.

synapsesocial.com/papers/69e8677e6e0dea528ddeb985https://doi.org/10.5281/zenodo.19664078
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