A Toy Model of Time Dilation as a Superposition of Time-Rate Branches on a Finite Rapidity Lattice: Consistency Conditions and Experimental Bounds

We explore the idea that relativistic time dilation is not a fundamental effect of spacetime geometry but the visible result of a quantum superposition of many “time-rate branches” that never collapse into one. Each branch runs clocks at a different rate. Relative motion shifts the weight of the superposition along a lattice of branches, and the average clock rate equals 1/γ (γ is the Lorentz factor, defined below). A finite number of branches N sets a maximum speed for massive particles, slightly below c. Light is proposed to be the part of physics shared by all branches, which is why it is never dephased and why every observer measures the same c. The model has two free parameters, the lattice spacing δ and the total number of branches N, plus a distribution width tied to δ. Existing ion-beam spectroscopy constrains δ ≲ 10⁻⁷ (rough), implying N ≳ 10⁸. The model cannot yet derive the light cone or the valueof N, but it makes definite, testable predictions. A second part examines two ways of handling the finite edge of the lattice, a hard wall and a weights-only reflection with pinned weights that predicts a plateau in time dilation at high energy, describes how to test it, and compares the two.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-29
DOI
https://doi.org/10.5281/zenodo.23031105
Primary Topic
Astrophysics and Cosmic Phenomena
Type
article
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article

A Toy Model of Time Dilation as a Superposition of Time-Rate Branches on a Finite Rapidity Lattice: Consistency Conditions and Experimental Bounds

Sahan Wijethunga
Zenodo (CERN European Organization for Nuclear Research)
Astrophysics and Cosmic Phenomena
article

A Toy Model of Time Dilation as a Superposition of Time-Rate Branches on a Finite Rapidity Lattice: Consistency Conditions and Experimental Bounds

Sahan Wijethunga
article en

Abstract

We explore the idea that relativistic time dilation is not a fundamental effect of spacetime geometry but the visible result of a quantum superposition of many “time-rate branches” that never collapse into one. Each branch runs clocks at a different rate. Relative motion shifts the weight of the superposition along a lattice of branches, and the average clock rate equals 1/γ (γ is the Lorentz factor, defined below). A finite number of branches N sets a maximum speed for massive particles, slightly below c. Light is proposed to be the part of physics shared by all branches, which is why it is never dephased and why every observer measures the same c. The model has two free parameters, the lattice spacing δ and the total number of branches N, plus a distribution width tied to δ. Existing ion-beam spectroscopy constrains δ ≲ 10⁻⁷ (rough), implying N ≳ 10⁸. The model cannot yet derive the light cone or the valueof N, but it makes definite, testable predictions. A second part examines two ways of handling the finite edge of the lattice, a hard wall and a weights-only reflection with pinned weights that predicts a plateau in time dilation at high energy, describes how to test it, and compares the two.

Zenodo (CERN European Organization for Nuclear Research)
University of Peradeniya (LK)
Openalex Percentile: Top 13%
Astrophysics and Cosmic Phenomena
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