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March 19, 20260 citationsOpen Access

Elastic Spacetime with Scale-Dependent Coupling (ESSC) v15: Emergent Circular Structure as a Self-Amplifying Deviation System

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Uumimoto

Key Points

  • This work aims to present a new framework for understanding circular geometry as a self-amplifying property in astrophysical systems.
  • Analyzed galaxy and cluster datasets to identify structural relations.
  • Quantified deviations from circular closure (δ₀) and their resultant spread (δ).
  • Developed a mathematical model to express the relationships between structural deviation and amplification.
  • Demonstrated that circular scale (π_eff) varies across astrophysical systems.
  • Identified a strong correlation between structural deviations and their amplification.
  • Established that deviations lead to further structure through a self-amplifying mechanism.

Abstract

This work presents a minimal structural framework in which circular geometry emerges as a distributed relational property rather than a fixed constant. In contrast to the conventional interpretation of π as a single invariant value, we show that an effective circular scale (πₑff) forms a finite-width band across astrophysical systems. Using galaxy and cluster datasets, we identify a consistent structural relation in which deviations from circular closure (δ₀) generate secondary structural spread (δ). This spread is not independent but arises through a scale-dependent amplification process. We find that the amplification coefficient k follows a banded discrete structure centered around powers of two: k ≈ 2ⁿ (1 + ε) where ε represents a fluctuation term. Importantly, ε is not externally driven by conventional physical quantities such as halo fraction or acceleration residuals, but instead correlates with the magnitude of the deviation itself: |ε| ∝ |δ₀| This indicates a self-amplifying mechanism in which deviation generates further structure. The resulting system exhibits a hybrid character combining discrete scaling (2ⁿ) and continuous fluctuation (ε). The final structural form can be expressed as: R = π (1 + δ₀) 1 + 2ⁿ (1 ± c|δ₀|) δ₀ 2⁻ⁿ This formulation suggests that observed structural and gravitational-like behaviors may emerge from internal relational geometry rather than requiring purely external mass components. This work does not propose a replacement for standard cosmological models. Instead, it introduces a structural perspective that may complement existing frameworks by emphasizing the role of relational geometry and self-amplifying deviation. v15 introduces: Identification of π as a distributed relational band rather than a fixed constant Empirical confirmation of strong correlation between structural deviation levels Discovery of banded discrete scaling in the amplification coefficient k Identification of ε as a self-generated fluctuation linked to deviation magnitude Final unified structural equation integrating circular deviation, scale hierarchy, and amplification

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Cite This Study

umimoto (2026) studied this question.

synapsesocial.com/papers/69bb92f2496e729e62980ae9https://doi.org/10.5281/zenodo.19069064
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Also Consider

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

  1. 1Elastic Spacetime with Scale-Dependent Coupling (ESSC) v15.1 Geometric Emergence and Sustained Circular Structure: From √ π to π in Astrophysical Systems2026
  2. 2ESSC v21: From Value to Scale — The Emergence of π as a Structural Closure Band in Galaxy Rotation Data2026
  3. 3Elastic Spacetime with Scale-Dependent Coupling (ESSC) v20 π as a Closure Constant: A Minimal Structural Formulation of Observational Termination2026
  4. 4Elastic Spacetime with Scale-Dependent Coupling (ESSC) v6.1: Persistence Bands and Structural Admissibility Across Disk Galaxies2026
  5. 5Elastic Spacetime with Scale-Dependent Coupling (ESSC) v22: Unified Structural Coordinates Across Galaxies and Clusters2026