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March 16, 20260 citationsOpen Access

Time as an Emergent Property of Photon Dynamics in a Single Viscoelastic Spacetime Medium

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CKChanag-sik Kim

Key Points

  • The aim is to redefine time as a property of wave dynamics in a viscoelastic medium, challenging traditional spacetime concepts.
  • Develop a theoretical framework linking time to photon dynamics within a viscoelastic medium.
  • Reinterpret gravitational effects as mechanical frequency shifts due to medium viscosity.
  • Analyze the relationship between photon energy dissipation and thermodynamic entropy increase.
  • Time is proposed as a dependent variable from photon dynamics, not a foundational dimension.
  • The model explains gravitational time dilation through mechanical means, resolving paradoxes in simultaneous existence.
  • Galactic rotation curves are explained without dark matter halos, based on the Baryonic Tully-Fisher Relation.

Abstract

This paper challenges the conventional geometric interpretation of 4D spacetime and the resulting multiverse hypotheses by redefining time as an emergent property of wave dynamics within a single, physically absolute viscoelastic medium. Rather than treating time as a foundational, independent dimensional axis, we propose that time is purely a dependent variable, phenomenologically derived from the mechanical attenuation of photons navigating through a medium of varying macroscopic stress. By reinterpreting gravitational time dilation as a mechanical frequency shift caused by the localized viscosity of the spacetime medium—rather than geometrical warping—this framework resolves the observational paradox of simultaneous existence across varying gravitational fields. Furthermore, by linking photon energy dissipation to the thermodynamic entropy increase of the medium, this model provides a fundamental, non-geometric mechanism for the Arrow of Time, successfully unifying thermodynamic irreversibility with macroscopic viscoelastic gravity. It also demonstrates that galactic rotation curves can be completely flattened, deriving the empirical Baryonic Tully-Fisher Relation, without the need for dark matter halos.

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Cite This Study

Chanag-sik Kim (2026) studied this question.

synapsesocial.com/papers/69b79ea18166e15b153ac2ddhttps://doi.org/10.5281/zenodo.19020574
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Gravitational Memory in Viscoelastic Spacetime : Photon Phase, Emergent Time, and Galactic Dynamics2026
  2. 2Analogy of Space-Time as an Elastic Medium–State of the Art and Perspectives on the Knowledge of Time2025 · 1 citations
  3. 3Physics of Time — A Modified Framework of General Relativity Based on Four-Dimensional Motion Decomposition2026
  4. 4A Unified Theory of Space-Time with Time as a Fully Spatial Coordinate: The Universe as a 4D Euclidean Dynamic Manifold Emergent from Quantum Entanglement Featuring Temporal Symmetry, Gauging of Inversions, Causal Discretization, and Specific Predictions for LIV/Damping2026
  5. 5Hypothesis of Spacetime Fluid — A Unified Physical Framework Based on Continuum Medium and NT Dimensional Rotation-Tiling Model2026