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| Main Author: | |
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| Format: | Recurso digital |
| Language: | English |
| Published: |
Zenodo
2026
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| Subjects: | |
| Online Access: | https://doi.org/10.5281/zenodo.19410329 |
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Table of Contents:
- <p>We present a derivation of the velocity characterising the non-local correlation frame of quantum entanglement, obtained from cosmological first principles without free parameters. The derivation rests on three propositions: that time is a finite incremental system with a start and an end; that the observable universe constitutes one complete increment of a containing framework we term true time; and that the Lorentz factor required for an observer in true time to experience the entire 13.8 billion year internal sequence as a single increment determines the frame velocity of non-local quantum correlations.</p> <p>The result is:</p> <p>v_TF = c√(1 − 1/γ²), γ = 1.38 × 10¹⁰</p> <p>yielding v_TF = c − δ, where δ = 2.63 × 10⁻²¹ ly yr⁻¹ — a velocity indistinguishable from c at any measurable scale yet formally distinct from it. This provides a theoretical upper bound on the frame velocity of quantum entanglement consistent with special relativity, derived purely from the universe's own time ratio.</p> <p>We contrast this with the TU Wien (2024) attosecond measurement, which measured the formation timescale of local entangled states during atomic ionisation — a particle travel measurement, not a non-local correlation speed. The two results address different physical questions and are not in conflict.</p> <p>We propose this result as Brown's Law of Temporal Frame Velocity and identify three testable predictions.</p>