Black Holes as Cosmic Subdivision Devices: Boundary-Induced Sectorization, Polarity Accumulation, and Layered Structure of the Universe

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Main Author: Yuuki, Theory
Format: Recurso digital
Published: Zenodo 2026
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author Yuuki, Theory
author_facet Yuuki, Theory
contents <p>This paper proposes a reinterpretation of black holes as cosmic subdivision devices rather than terminal gravitational sinks.<br>In this framework, black holes are treated as boundary structures that enforce conditional separability of spacetime sectors. The accumulation of such single-polarity boundaries across spacetime is shown to be inherently unstable, leading to symmetry breaking, bipolarization, and inter-sector interference.<br>The Einstein–Rosen bridge is redefined as a boundary collapse interface where strict sector separation fails and effective coupling emerges. This transition provides a structural mechanism for hierarchical organization across scales, connecting local spatial structure and global cosmological patterns without introducing new fundamental laws.<br>Entropy growth is interpreted as a logarithmic increase in effective spacetime subdivisions, linking thermodynamic behavior directly to boundary accumulation rather than information loss.<br>By treating spatial and cosmic layers as scale-dependent descriptions of a unified boundary process, this work offers a conceptual framework connecting black holes, entropy, large-scale anisotropy, and cosmic structure formation.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18198840
institution Zenodo
language
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Black Holes as Cosmic Subdivision Devices: Boundary-Induced Sectorization, Polarity Accumulation, and Layered Structure of the Universe
Yuuki, Theory
<p>This paper proposes a reinterpretation of black holes as cosmic subdivision devices rather than terminal gravitational sinks.<br>In this framework, black holes are treated as boundary structures that enforce conditional separability of spacetime sectors. The accumulation of such single-polarity boundaries across spacetime is shown to be inherently unstable, leading to symmetry breaking, bipolarization, and inter-sector interference.<br>The Einstein–Rosen bridge is redefined as a boundary collapse interface where strict sector separation fails and effective coupling emerges. This transition provides a structural mechanism for hierarchical organization across scales, connecting local spatial structure and global cosmological patterns without introducing new fundamental laws.<br>Entropy growth is interpreted as a logarithmic increase in effective spacetime subdivisions, linking thermodynamic behavior directly to boundary accumulation rather than information loss.<br>By treating spatial and cosmic layers as scale-dependent descriptions of a unified boundary process, this work offers a conceptual framework connecting black holes, entropy, large-scale anisotropy, and cosmic structure formation.</p>
title Black Holes as Cosmic Subdivision Devices: Boundary-Induced Sectorization, Polarity Accumulation, and Layered Structure of the Universe
url https://doi.org/10.5281/zenodo.18198840