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Bibliographic Details
Main Author: Beecham, James E.
Format: Recurso digital
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Published: Zenodo 2026
Online Access:https://doi.org/10.5281/zenodo.18721182
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  • <p>The discovery of nuclear fission in 1938 revealed that uranium nuclei, when perturbed by<br>neutron bombardment, split into smaller nuclei accompanied by energy release and the<br>appearance of new chemical elements. In conventional nuclear physics, this is described<br>as a rearrangement of nucleons governed by nuclear forces and binding energies. In the<br>Space-Phase (SP3) framework, nuclear fission represents a deeper phenomenon: the<br>stability failure and re-locking of a conditioned space-phase domain into new domains.<br>The uranium nucleus is interpreted as a highly conditioned, coherent region of the spacephase substrate. Neutron perturbation pushes this domain beyond its stability threshold,<br>causing structural failure and reconfiguration into two or more new coherent domains with<br>distinct electronic identities. This mechanism explains the appearance of new elements<br>not as contamination but as legitimate re-locking events. The same stability-failure and relocking mechanism is proposed to occur at vastly larger scales, including the<br>fragmentation and reassembly behavior observed in UAP orb-missile interactions. In both<br>nuclear and macroscopic contexts, perturbation drives conditioned domains beyond<br>coherence stability limits, producing fragmentation followed by coherent re-locking. This<br>unified interpretation suggests that nuclear transformations and orb fragmentation<br>represent scale-independent expressions of substrate-level domain stability transitions<br>within the space-phase medium.</p>