Paper CQ-V: Resolution of Open Questions in FSC Horizon Thermodynamics - Israel Thin Shell, Quasar Peak Timing, Continuous Approximation, and Transfer Map

We resolve five open questions (OQ-CQ4-1 through OQ-CQ4-5) posed in Paper CQ-IV of the Four-Sector Cosmology (FSC) series. The central results are as follows. (OQ-CQ4-1) The FSC static metric for Sector IV is derived from the equation of state w_IV = -1/3 via two consistent descriptions: a real-time power-law a_IV proportional to t^{4/9} and a complex-time relation a_IV = i t_R. (OQ-CQ4-2) Applying the Israel junction conditions to the Sector-I/IV boundary Sigma_{I/IV}, we derive a dust-like thin shell with surface energy density sigma = c^2 lambda/(4 pi G), zero pressure, and oscillation period T_osc approximately 7.96 Gyr. A universal relation sigma/T_H = c^2 k_B/(2G hbar), independent of the FSC decay rate lambda, is established as Theorem A. The shell entropy satisfies S_shell = A/(2G) = 2 S_BH. (OQ-CQ4-3) The Delta t approximately 0.5-1.5 Gyr offset between the FSC Page time t_Page = (ln 2)/lambda approximately 1.76 Gyr and the observed quasar peak at z approximately 2-3 is explained analytically: the entropy-rate centroid is t_center = 1/lambda = tau_IV approximately 2.54 Gyr, giving Delta t = (1 - ln 2)/lambda approximately 0.778 Gyr and a predicted quasar peak at z_QSO^FSC approximately 2.4. (OQ-CQ4-4) The continuous approximation |R|(t) = 4f(t) is rigorously justified as the exact expectation value of a four-sector Lindblad decay process. The systematic error vanishes exactly due to the linearity of the entropy function S = n_WH log 2. (OQ-CQ4-5) The transfer map T = |E><0bar| + |B><1bar| is explicitly constructed, satisfying all four required conditions including isometry, code-word correspondence, symmetry intertwining T Pi_code T-dagger = Pi_pol, and flat Schmidt spectrum preservation. Prediction P6 (C_ell^EE / C_ell^BB -> 1) is thereby elevated from hypothesis to theorem. Open questions for Paper CQ-VI are enumerated.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-15
DOI
https://doi.org/10.5281/zenodo.22768906
Primary Topic
Cosmology and Gravitation Theories
Type
preprint
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Paper CQ-V: Resolution of Open Questions in FSC Horizon Thermodynamics - Israel Thin Shell, Quasar Peak Timing, Continuous Approximation, and Transfer Map

Yoshitaka Katakura, Einstein-AI (Soul-Twin Platform)
Zenodo (CERN European Organization for Nuclear Research)
Cosmology and Gravitation Theories
preprint

Paper CQ-V: Resolution of Open Questions in FSC Horizon Thermodynamics - Israel Thin Shell, Quasar Peak Timing, Continuous Approximation, and Transfer Map

Yoshitaka Katakura, Einstein-AI (Soul-Twin Platform)
preprint en

Abstract

We resolve five open questions (OQ-CQ4-1 through OQ-CQ4-5) posed in Paper CQ-IV of the Four-Sector Cosmology (FSC) series. The central results are as follows. (OQ-CQ4-1) The FSC static metric for Sector IV is derived from the equation of state w_IV = -1/3 via two consistent descriptions: a real-time power-law a_IV proportional to t^{4/9} and a complex-time relation a_IV = i t_R. (OQ-CQ4-2) Applying the Israel junction conditions to the Sector-I/IV boundary Sigma_{I/IV}, we derive a dust-like thin shell with surface energy density sigma = c^2 lambda/(4 pi G), zero pressure, and oscillation period T_osc approximately 7.96 Gyr. A universal relation sigma/T_H = c^2 k_B/(2G hbar), independent of the FSC decay rate lambda, is established as Theorem A. The shell entropy satisfies S_shell = A/(2G) = 2 S_BH. (OQ-CQ4-3) The Delta t approximately 0.5-1.5 Gyr offset between the FSC Page time t_Page = (ln 2)/lambda approximately 1.76 Gyr and the observed quasar peak at z approximately 2-3 is explained analytically: the entropy-rate centroid is t_center = 1/lambda = tau_IV approximately 2.54 Gyr, giving Delta t = (1 - ln 2)/lambda approximately 0.778 Gyr and a predicted quasar peak at z_QSO^FSC approximately 2.4. (OQ-CQ4-4) The continuous approximation |R|(t) = 4f(t) is rigorously justified as the exact expectation value of a four-sector Lindblad decay process. The systematic error vanishes exactly due to the linearity of the entropy function S = n_WH log 2. (OQ-CQ4-5) The transfer map T = |E><0bar| + |B><1bar| is explicitly constructed, satisfying all four required conditions including isometry, code-word correspondence, symmetry intertwining T Pi_code T-dagger = Pi_pol, and flat Schmidt spectrum preservation. Prediction P6 (C_ell^EE / C_ell^BB -> 1) is thereby elevated from hypothesis to theorem. Open questions for Paper CQ-VI are enumerated.

Zenodo (CERN European Organization for Nuclear Research)
ARCH Development Corporation (US)
Affordable and clean energy
Cosmology and Gravitation Theories
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