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July 5, 20260 citationsOpen Access

Toward Collapse Geometry: CCV(t) as a Tier-0 Geometric Framework for Coherence Capacity Deformation and Precursor Dynamics

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RBRonald Brogdon

Key Points

  • This framework aims to model systemic and civilizational failures as measurable changes in coherence capacity over time.
  • Introduces the CCV(t) operator to track coherence capacity changes over time.
  • Utilizes a real synthetic Texas grid testbed (ACTIVSg2000) to test the framework against empirical data.
  • Specifies detection logic operators in closed form for measuring drift, precursor dynamics, and decay.
  • Identifies a significant transition in AC power-flow solvability at 103% of base-case load.
  • Reports lead-time statistics for coherence capacity detection under contingency stress considering 120 scenarios.
  • Documents gaps in calibration weights and validation of framework parameters against empirical telemetry.

Abstract

This manuscript introduces Collapse Geometry, a Tier-0 framework within the SCFL/UCMS canon modeling systemic and civilizational failure as measurable geometric deformation of coherence capacity over time. The central operator, CCV(t) — Coherence Capacity Volume at time t — integrates drift geometry, precursor window compression, τ₁/₂ half-life decay, entropic acceleration, seam-level systemic risk cascades, and cross-domain restoration pathways across physical, institutional, civilizational, and interior substrates. The framework traces its scientific lineage through collapsing Riemannian manifolds, gravitational collapse, progressive structural failure, and relational ontologies, and positions itself relative to adjacent recent work in AI structural coherence (Dynamic Coherence Windows) and institutional translation coherence (the Field Protocol), as well as the established early warning signals literature on critical slowing down (Scheffer, Dakos, Boers). Empirical grounding is anchored to ACTIVSg2000, a real 2,000-bus synthetic Texas grid testbed. A corrected N=120 scenario sweep (reactive power limits properly enforced, following identification and resolution of a physical-validity error in an earlier run) provides real lead-time statistics for drift, precursor, and τ₁/₂ detection under N-1/N-2 contingency stress. A separate replicated experiment identifies a sharp, non-monotonic AC power-flow solvability transition near 103% of base-case load. Formal detection-logic operators (drift, precursor-window compression, τ₁/₂ location, fork classification) are fully specified in closed form, along with a reproducible computation pipeline and explicit falsifiability criteria for the framework’s core claims. This is a v0.9 release: a founding theoretical specification and measurement architecture, not a fully validated model. The manuscript states its own scope plainly (Section 1.1) and documents outstanding gaps explicitly (Section 12), including an unresolved circularity in fitting the core operator’s calibration weights against real telemetry, and pending validation of two figures against the same review standard applied to the rest. CCV Candidate Operators Research Note-supplemental

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Cite This Study

Ronald Brogdon (2026) studied this question.

synapsesocial.com/papers/6a49f68df5d1d45b28800ef2https://doi.org/10.5281/zenodo.21153434
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Also Consider

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

  1. 1The Geometry of Now: A Coherence-Manifold Framework for Real-Time Collapse Dynamics2026
  2. 2The Civilizational Continuity Corridor: CCV(t) as the Temporal Operator of Societal Coherence and Rupture2026
  3. 3Constitutive Geometry of Systemic Coherence: Orthogonal Bases, Dimensional Independence, and Faithful Projections in the UCMS/SCFL Framework2026
  4. 4The Geometry of Now — Volume II: Coherence Dynamics — Operator Mechanics, Seam-Fragility Signatures, and Tail-Dominated Rupture in the SCFL Framework2026
  5. 5The Geometry of Now — Volume III: Measurement Architecture — Continuum Field Calculus, Discrete Graph Structure, and Kinetic Triage for Substrate-Agnostic Coherence Measurement2026