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April 29, 20260 citationsOpen Access

Flow-Time Theory: A Fundamental Scalar Field Theory of Entropy

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DTDaniel Tang

Key Points

  • Explore the formulation of Flow-Time Theory as a scalar field theory of entropy.
  • Develop a field-theoretic approach to Flow-Time Theory.
  • Derive flow-time density from a fundamental scalar field.
  • Construct a complete Lagrangian density with higher-derivative spatial terms.
  • Entropy production is driven by the spatial gradient of flow-time density.
  • Theory aligns with the 10^122 ratio between Planck-scale and cosmic flow-time densities.
  • Restores symmetry between processes of entropy increase and decrease.

Abstract

This paper presents a self-contained field-theoretic formulation of Flow-Time Theory. The flow-time density ρₜ is not introduced as a phenomenological parameter but is derived from a fundamental scalar field Φ (x) via ρₜ = ∂ₜ Φ. A complete Lagrangian density is constructed, from which all core axioms follow as equations of motion. The theory includes a higher-derivative spatial term D (∇²Φ) ² that stabilizes the vacuum, generates diffusion dynamics, and improves ultraviolet behavior. Entropy production is driven solely by the spatial gradient of ρₜ, without dependence on matter currents for its sign. The theory naturally reproduces the 10¹22 ratio between Planck-scale and cosmic flow-time densities and provides a closed mathematical framework suitable for quantization. A key feature is the restoration of full symmetry between entropy increase and decrease, which appear as exact mirror processes determined only by the sign of ∇ρₜ and the internal sign of ρₜ.

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Cite This Study

Daniel Tang (2026) studied this question.

synapsesocial.com/papers/69f154c0879cb923c4944fa8https://doi.org/10.5281/zenodo.19824536
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