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April 10, 20260 citationsOpen Access

Quantum Tunneling: Vortex Incision-Passing and Instant Closure Mechanism

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JLjiaman linCLchuanzai lin

Key Points

  • The aim is to explore a new mechanism of quantum tunneling through superfluid vortex dynamics.
  • Developed a theoretical framework based on vacuum superfluid vortex cosmos theory.
  • Described particle behavior as high-speed rotating vortex rings.
  • Analyzed the mechanics of tunneling in terms of incision-passing through potential barriers.
  • Proposed that the tunneling process does not involve stretching or forming ribbons.
  • Demonstrated that vortex rings can switch across barriers without confronting internal forces.
  • Identified low tunneling probability linked to specific fluid engagement rather than quantum randomness.

Abstract

Based on the vacuum superfluid vortex cosmos theory, this paper proposes the "incision-passing and instant closure" mechanism of quantum tunneling. A particle is a high-speed rotating vortex ring in the vacuum superfluid, and its internal strong force is the confining pressure produced by high-speed rotation. During tunneling, the vortex does not stretch or form a ribbon; instead, a local incision directly passes through the thin potential barrier. Once the incision passes through, it rewinds immediately, and the entire vortex ring switches across the barrier instantaneously. The process requires no confrontation with the internal strong force, since the rear fluid keeps rotating continuously. The low probability of tunneling arises from the strict condition of counter-rotational fluid engagement, not from intrinsic quantum randomness.

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Cite This Study

lin et al. (2026) studied this question.

synapsesocial.com/papers/69d896166c1944d70ce074b5https://doi.org/10.5281/zenodo.19472641
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