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October 10, 20250 citationsOpen Access

The Vibrational Fabric of Spacetime: A Model for the Emergence of Mass, Inertia, and Quantum Non-Locality

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GGG. Furne Gouveia

Key Points

  • This model proposes mass emerges from energy stored in a vibrational network, reshaping our understanding of spacetime.
  • Key result shows how quantum properties and gravitational features link through the network's deformation mechanics, challenging classical views.
  • The emergence of General Relativity from this framework is framed as a refractive effect influenced by energy density variations.
  • Connections to Bell's inequalities reveal a mechanical basis for quantum non-locality, emphasizing the model's comprehensive implications.

Abstract

This article presents a unified theoretical framework where the geometry of spacetime, the inertia of matter, and quantum non-locality emerge from a single fundamental substrate: a vibrational network. We model space as a dynamic network of vibrating nodes, its elastic properties calibrated by the fundamental constants \ (\) and \ (c \). Mass is not a primitive property but is identified with the energy stored in the deformation of this network. The non-linearity of this medium at high energy allows for the self-trapping of waves into stable structures identified as particles. A reflection-based IN/OUT wave mechanism confers upon these particles an inherently non-local character, providing a mechanical explanation for the violation of Bell's inequalities and the holographic principle. A key result is the formal derivation of the Planck scale \ (P \) and the quantum of action \ (\) from the network's properties. Crucially, we demonstrate how General Relativity emerges from the dynamics of this network as a refractive effect, where energy density variations determine the effective "refractive index" of space, naturally leading to geodesic deviation and curvature. In this model, inertial mass \ (mᵢ \) and gravitational mass \ (mg \) are distinct emergent properties of a shared underlying deformation, linked by the gravitational constant \ (G \), which quantifies the network's susceptibility to deformation.

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Cite This Study

G. Furne Gouveia (2025) studied this question.

synapsesocial.com/papers/68e861907ef2f04ca37e403bhttps://doi.org/10.20944/preprints202509.0184.v2
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