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March 31, 20260 citationsOpen Access

Gravity as Mechanical Attractor: A Surplus-Driven Framework for Density, Collapse, and Matter Formation

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DGDexter Coen Gilbert

Key Points

  • The aim is to reframe gravity as a mechanical attractor and explore its role in density and matter formation.
  • Reinterpreted gravity beyond Newton and Einstein frameworks
  • Introduced concepts like thermodynamic surplus density and recursive structures
  • Analyzed the role of motion and friction in density generation
  • Gravity is framed as a process involving motion and friction correcting density
  • Matter is conceptualized as a stable result of surplus motion post-collapse
  • Integration of new variables offers a unified description across gravitational scales

Abstract

Gravity has traditionally been described either as a force acting at a distance (Newton) or as the curvature of spacetime (Einstein). While both frameworks successfully predict gravitational behavior, they leave the generative mechanism of gravity under-specified. This paper reframes gravity as a mechanical attractor: a dynamic process in which motion, frictional correction, and recursive stabilization weave spacetime density. Mass is only one contributor; internal and external motions, together with frictional closure cycles, generate the density gradients that manifest as gravitational attraction. Within this framework, matter emerges as the stable residue of surplus motion after cohesive collapse. This approach integrates thermodynamic surplus density (Sigma), recursive structure (Xi), and affinity-driven collapse (A) into a unified field description of gravitational behavior across scales.

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Cite This Study

Dexter Coen Gilbert (2025) studied this question.

synapsesocial.com/papers/69cb64f0e6a8c024954b8f5fhttps://doi.org/10.5281/zenodo.19319645
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