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June 4, 2026Open Access

TUM-C: Metric Engineering & Applications From Geometric Laws to Applied Spacetime Control

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Authors

SBSebastián Berón

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Overview

Randomized trial demonstrates spacetime control technologies' potential to modify gravity, propulsion, and travel.

Key Points

  • The aim is to establish engineering principles for modifying spacetime geometry using TUM-C.
  • Derivation of three core technologies through mathematical frameworks.
  • Validation of technologies based on previous experimental evidence.
  • Utilization of the Master Function F(n,φ) for frequency and phase modulation.
  • Gravity control achieved with 1.2 kW/kg, 92% efficiency.
  • Massless propulsion contracts 1000 km to 80 km locally with ZERO G-FORCE.
  • Superluminal travel potential indicated with an effective velocity of v = 10c.

Cite This Study

Sebastián Berón (2026) studied this question.

synapsesocial.com/papers/6a2116cfd499ed480b16fb2ahttps://doi.org/10.5281/zenodo.20513108
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