Paper 9 The Cosmic Microwave Background as Coherence Emission: A Holosphere-Based Model of Angular Re-Radiation
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2025
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| author | Sarnowski, Michael |
| author_facet | Sarnowski, Michael |
| contents | <p>We propose a new physical explanation for the origin and structure of the Cosmic Microwave Background (CMB) as blackbody radiation emerging from the outer coherence boundary of a rotating Holosphere lattice. In this framework, the CMB arises not from a primordial fireball but from the redshifted hydrogen line radiation emitted at the angular visibility limit of the universe, filtered through a structured interference mechanism defined by the discrete geometry of the lattice. Using the Holosphere percolation constant <span><span>κ=3/2\kappa = 3/2</span><span><span><span>κ</span><span>=</span></span><span><span>3/2</span></span></span></span>, a coherence angle <span><span>θ0≈0.0227\theta_0 \approx 0.0227</span><span><span><span><span>θ</span><span><span><span><span><span><span>0</span></span></span><span></span></span></span></span></span><span>≈</span></span><span><span>0.0227</span></span></span></span>, and a modulation model incorporating constructive and destructive resonance, we accurately reproduce the observed multipole peaks of the Planck 2018 CMB power spectrum. Our model captures the first acoustic peak at <span><span>ℓ≈220\ell \approx 220</span><span><span><span>ℓ</span><span>≈</span></span><span><span>220</span></span></span></span>, subsequent peaks at <span><span>ℓ≈540\ell \approx 540</span><span><span><span>ℓ</span><span>≈</span></span><span><span>540</span></span></span></span> and <span><span>ℓ≈800\ell \approx 800</span><span><span><span>ℓ</span><span>≈</span></span><span><span>800</span></span></span></span>, and suppression near <span><span>ℓ≈400\ell \approx 400</span><span><span><span>ℓ</span><span>≈</span></span><span><span>400</span></span></span></span> and <span><span>ℓ≈700\ell \approx 700</span><span><span><span>ℓ</span><span>≈</span></span><span><span>700</span></span></span></span>, with residuals consistent with known anomalies such as the CMB Cold Spot. This coherence-based approach eliminates the need for an inflationary epoch or reionization history and provides a testable, geometrically grounded alternative to the standard <span><span>Λ\Lambda</span><span><span><span>Λ</span></span></span></span>CDM interpretation of the CMB.</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_16315704 |
| institution | Zenodo |
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| publishDate | 2025 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Paper 9 The Cosmic Microwave Background as Coherence Emission: A Holosphere-Based Model of Angular Re-Radiation Sarnowski, Michael <p>We propose a new physical explanation for the origin and structure of the Cosmic Microwave Background (CMB) as blackbody radiation emerging from the outer coherence boundary of a rotating Holosphere lattice. In this framework, the CMB arises not from a primordial fireball but from the redshifted hydrogen line radiation emitted at the angular visibility limit of the universe, filtered through a structured interference mechanism defined by the discrete geometry of the lattice. Using the Holosphere percolation constant <span><span>κ=3/2\kappa = 3/2</span><span><span><span>κ</span><span>=</span></span><span><span>3/2</span></span></span></span>, a coherence angle <span><span>θ0≈0.0227\theta_0 \approx 0.0227</span><span><span><span><span>θ</span><span><span><span><span><span><span>0</span></span></span><span></span></span></span></span></span><span>≈</span></span><span><span>0.0227</span></span></span></span>, and a modulation model incorporating constructive and destructive resonance, we accurately reproduce the observed multipole peaks of the Planck 2018 CMB power spectrum. Our model captures the first acoustic peak at <span><span>ℓ≈220\ell \approx 220</span><span><span><span>ℓ</span><span>≈</span></span><span><span>220</span></span></span></span>, subsequent peaks at <span><span>ℓ≈540\ell \approx 540</span><span><span><span>ℓ</span><span>≈</span></span><span><span>540</span></span></span></span> and <span><span>ℓ≈800\ell \approx 800</span><span><span><span>ℓ</span><span>≈</span></span><span><span>800</span></span></span></span>, and suppression near <span><span>ℓ≈400\ell \approx 400</span><span><span><span>ℓ</span><span>≈</span></span><span><span>400</span></span></span></span> and <span><span>ℓ≈700\ell \approx 700</span><span><span><span>ℓ</span><span>≈</span></span><span><span>700</span></span></span></span>, with residuals consistent with known anomalies such as the CMB Cold Spot. This coherence-based approach eliminates the need for an inflationary epoch or reionization history and provides a testable, geometrically grounded alternative to the standard <span><span>Λ\Lambda</span><span><span><span>Λ</span></span></span></span>CDM interpretation of the CMB.</p> |
| title | Paper 9 The Cosmic Microwave Background as Coherence Emission: A Holosphere-Based Model of Angular Re-Radiation |
| url | https://doi.org/10.5281/zenodo.16315704 |