Climate & Environmentpreprint2026-08-21

Particle Colliders and the Search for Fundamental Constituents: What QGD Implies for High-Energy Physics

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Abstract

Particle colliders are justified in part by the assumption that high-energy collisions reproduce the conditions of the early universe shortly after the Big Bang, thereby granting experimental access to the fundamental constituents of matter. This paper examines that justification from the perspective of Quantum-Geometry Dynamics (QGD), in which the initial state of the universe was not a hot dense singularity but a cold, uniform, isotropic distribution of free preons⁽⁺⁾ — the fundamental kinetic constituents of matter — propagating through a discrete preonic structure of space. Since there was no Big Bang in QGD, the collider-as-early-universe analogy fails at the foundational level. High-energy collisions do not reproduce the initial state; they reproduce something entirely different: extreme local disruption of p-gravity bound configurations at scales orders of magnitude below d_Λ, followed by immediate re-binding of freed preons⁽⁺⁾ and sub-aggregates into stable attractor configurations. The particles produced in colliders are not the primordial constituents of the universe — they are re-binding products whose identity is determined by which stable p-gravity equilibrium configurations are accessible given the post-collision preon⁽⁺⁾ distribution. Free preons⁽⁺⁾ are not and cannot be produced as observable particles in colliders, because p-gravity acts immediately at sub-particle scales and any momentarily freed preon⁽⁺⁾ is re-bound before it can propagate to a detector. The fundamental constituents are accessible not through high-energy collisions but through precise low-energy measurements of the QGD constants from the empirical grounding program.

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View paper (DOI)Open access versionOpenAlexZenodo (CERN European Organization for Nuclear Research)Published 2026-08-21

Authors: Daniel Burnstein