Black Hole Ignition: Bias-Triggered Universe Emergence and the Photon–Radiation Record_v1.3

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Autor principal: Birinci, Yasin
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Publicado: Zenodo 2025
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author Birinci, Yasin
author_facet Birinci, Yasin
contents <p>Here we explore an alternative: the black hole (BH) ignition hypothesis. Instead of a unique, global creation event, universes are ignited when gravitational collapse accumulates sufficient matter and radiation at a central node (the classical singularity).</p> <p>This model is motivated by three strands:</p> <ul> <li>(i) the observed baryon-to-photon ratio ($\eta \approx 6 \times 10^{-10}$) and the enormous photon inventory in the CMB,</li> <li>(ii) quantum-gravity arguments that replace singularities with finite cores and allow bounce/nucleation behavior, and</li> <li>(iii) observational evidence that our universe shows no continual feed from a parent (CMB isotropy), favoring sealed, one-shot ignitions rather than persistent channels.</li> </ul> <p><span>The paper proceeds as follows:</span></p> <ul> <li><strong><span>Section 3</span></strong><span> develops the physical picture of the black-hole node: photon capture, geometric focusing, the singular dot as a photon–matter capacitor, and quantum-gravity resolution of infinite curvature into a finite core.</span></li> <li><strong><span>Section 4</span></strong><span> formalizes bias and the ignition criterion.</span></li> <li><strong><span>Section 5</span></strong><span> presents quantitative bookkeeping (the photon–baryon table) and compares energy and number budgets with the CMB.</span></li> <li><strong><span>Section 5a</span></strong><span> addresses energy conservation in the BH–bias ignition framework, showing how stored singularity energy is partitioned into matter, radiation, and vacuum energy without violating conservation laws (Table 2).<br><strong>Section 5b</strong> vacuum Energy and the Expanding Reservoir<br><strong>Section 5c </strong>cosmic Acceleration and the External Vacuum Analogy</span></li> <li><strong><span>Section 6</span></strong><span> outlines predictions and falsifiability, including observational tests and possible signatures (e.g., residual radiation, galaxy spin alignments).</span></li> <li><strong><span>Section 7</span></strong><span> integrates the model with existing cosmological frameworks (ΛCDM, LQG bounce, Einstein–Cartan, BH cosmology).</span></li> <li><strong><span>Section 8</span></strong><span> explores physical and philosophical implications, including black holes as cosmic wombs, radiation as bias ledger, and one-way generational chains.</span></li> <li><strong><span>Section 9</span></strong><span> concludes.</span></li> </ul> <div> </div>
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publisher Zenodo
record_format zenodo
spellingShingle Black Hole Ignition: Bias-Triggered Universe Emergence and the Photon–Radiation Record_v1.3
Birinci, Yasin
Photons
Vaccum
Vacuum Fluctuations
Radiation
Black Hole
Matter
Anti Matter
Plasma
baryons
<p>Here we explore an alternative: the black hole (BH) ignition hypothesis. Instead of a unique, global creation event, universes are ignited when gravitational collapse accumulates sufficient matter and radiation at a central node (the classical singularity).</p> <p>This model is motivated by three strands:</p> <ul> <li>(i) the observed baryon-to-photon ratio ($\eta \approx 6 \times 10^{-10}$) and the enormous photon inventory in the CMB,</li> <li>(ii) quantum-gravity arguments that replace singularities with finite cores and allow bounce/nucleation behavior, and</li> <li>(iii) observational evidence that our universe shows no continual feed from a parent (CMB isotropy), favoring sealed, one-shot ignitions rather than persistent channels.</li> </ul> <p><span>The paper proceeds as follows:</span></p> <ul> <li><strong><span>Section 3</span></strong><span> develops the physical picture of the black-hole node: photon capture, geometric focusing, the singular dot as a photon–matter capacitor, and quantum-gravity resolution of infinite curvature into a finite core.</span></li> <li><strong><span>Section 4</span></strong><span> formalizes bias and the ignition criterion.</span></li> <li><strong><span>Section 5</span></strong><span> presents quantitative bookkeeping (the photon–baryon table) and compares energy and number budgets with the CMB.</span></li> <li><strong><span>Section 5a</span></strong><span> addresses energy conservation in the BH–bias ignition framework, showing how stored singularity energy is partitioned into matter, radiation, and vacuum energy without violating conservation laws (Table 2).<br><strong>Section 5b</strong> vacuum Energy and the Expanding Reservoir<br><strong>Section 5c </strong>cosmic Acceleration and the External Vacuum Analogy</span></li> <li><strong><span>Section 6</span></strong><span> outlines predictions and falsifiability, including observational tests and possible signatures (e.g., residual radiation, galaxy spin alignments).</span></li> <li><strong><span>Section 7</span></strong><span> integrates the model with existing cosmological frameworks (ΛCDM, LQG bounce, Einstein–Cartan, BH cosmology).</span></li> <li><strong><span>Section 8</span></strong><span> explores physical and philosophical implications, including black holes as cosmic wombs, radiation as bias ledger, and one-way generational chains.</span></li> <li><strong><span>Section 9</span></strong><span> concludes.</span></li> </ul> <div> </div>
title Black Hole Ignition: Bias-Triggered Universe Emergence and the Photon–Radiation Record_v1.3
topic Photons
Vaccum
Vacuum Fluctuations
Radiation
Black Hole
Matter
Anti Matter
Plasma
baryons
url https://doi.org/10.5281/zenodo.17079319