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February 9, 20260 citationsOpen Access

Gravitational Phenomenology from Interface-Level Relational-Quanta Readouts in the Entanglement-Algebraic Spacetime

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MLMichael E. Labhard

Key Points

  • The aim is to explore gravitational phenomena as readouts from relational quantum structures instead of fundamental forces.
  • Interface-level reconstruction of gravitational concepts within entanglement-algebraic spacetime.
  • Coarse-graining processes applied to dimensionless scalar functions.
  • Identification of stability criteria for persistence sectors among configurations.
  • Gravitational phenomena arise from interface-level structures rather than being fundamental forces.
  • Overlapping boundary layers of persistence sectors lead to observable gravitational effects including attraction and lensing.
  • Non-fundamental nature of spacetime and gravity is suggested through coarse-grained constructs.

Abstract

This paper is archived as a speculative research work. We present an interface-level reconstruction of gravitational phenomenology within Entanglement-Algebraic Spacetime (EAS) in which neither spacetime nor gravitational interaction is fundamental. The kernel supplies only a dimensionless scalar assignment Φ: X → R+. All admissibility notions are introduced only at the interface via coarse-graining Φℓ = Gℓ Φ and a headroom readout Aℓ (Φℓ). Persistence sectors are interface-stable organizations identifed under the interface's persistence criteria across an ordered conguration family Φ (k) (where k is not time). Smoothness and closure are imposed as interface design constraints on Φℓ, yielding boundary-layer structure in Aℓ around persistence support. When multiple persistence sectors coexist, their interface boundary layers overlap, producing systematic changes in the local relational-quanta saturation prole. Gravitational attraction, time dilation, lensing, and curvature arise as interface readouts of this overlap structure rather than as fundamental forces or particle exchange.

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Cite This Study

Michael E. Labhard (2026) studied this question.

synapsesocial.com/papers/698979f5f0ec2af6756e8230https://doi.org/10.5281/zenodo.18519282
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