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Preprint . 2026
License: CC BY
Data sources: Datacite
ZENODO
Preprint . 2026
License: CC BY
Data sources: Datacite
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Science For Peace; Based on the Cosmological Thermosynthesis Theory v3.2

Authors: Fernández, Adrian G.;

Science For Peace; Based on the Cosmological Thermosynthesis Theory v3.2

Abstract

Science For Peace: Ten Chapters Based on the Cosmological Thermosynthesis Theory (TTC v3.2) This collection presents the complete "Science For Peace" series, a rigorous theoretical framework grounded in the Cosmological Thermosynthesis Theory (TTC v3.2). The work unifies particle physics, quantum gravity, cosmology, and engineering applications through a single primordial superfluid of ultralight scalar bosons (etherions) with mass me=(1.00±0.05)×10−22me=(1.00±0.05)×10−22 eV, constrained to a topological sector defined by linking numbers L123=1/2L123=1/2 and L12=1/2L12=1/2. Chapter 1: Non-Singularity and Thermodynamic Foundations — Establishes the ontological basis of TTC v3.2, demonstrating intrinsic non-singularity through entropic crystallization of the etherion superfluid and introducing the positivity lemma Γg⋅ΔS>0Γg⋅ΔS>0 as the microscopic engine of emergent gravity. Chapter 2: Mathematical Formalism of the Etherion Field — Provides a self-contained derivation of the covariant Klein–Gordon equation on a compact, globally hyperbolic Lorentzian manifold, proving existence, uniqueness, and regularity of solutions, and bridging to the Gross–Pitaevskii equation in the non-relativistic limit. Chapter 3: Primordial Superfluid, Density ρeρe and Coherence Length ξξ — Derives the superfluid density ρe∼10−27ρe∼10−27 kg/m³ and coherence length ξ≳1012ξ≳1012 m, enabling interplanetary quantum coherence and providing the foundation for entropic corrections in propulsion and thermal management. Chapter 4: Emergent Gravitational Gradient Γg(N,r)Γg(N,r) and Entropic Change ΔS(N)ΔS(N) — Formalizes the maps Γg=GNme/r2Γg=GNme/r2 and ΔS=kBln⁡NΔS=kBlnN, proving their product positivity and demonstrating how this mechanism unifies molecular binding corrections, radiological shielding, and cyclic cosmology. Chapter 5: Emergent Cosmological Dynamics and Non-Singular Cycle — Derives a modified Friedmann equation incorporating entropic corrections, proving the existence of a stable, non-singular cyclic solution with period T=24.93T=24.93 Gyr, resolving the cosmological singularity problem. Chapter 6: Dynamic Equation of State of Dark Energy — Obtains the Chevallier–Polarski–Linder parametrization w(a)=−0.717−1.72(1−a)w(a)=−0.717−1.72(1−a) from superfluid entropy evolution, fully compatible with DESI DR2 data, while simultaneously resolving the Hubble tension with H0=67.66±0.42H0=67.66±0.42 km s⁻¹ Mpc⁻¹. Chapter 7: Particle Physics — Entropic CP Violation and Baryonic Asymmetry — Derives the entropic CP-violation measure ΔSCP=kBηΓgtPΔSCP=kBηΓgtP, simultaneously accounting for the cosmic baryon asymmetry and predicting a neutrino CP phase δCP≈266∘δCP≈266∘, testable by DUNE and T2HK. Chapter 8: Starship as Scalable Platform for Validation and Technological Reconversion — Formalizes Starship as a multi-regime engineering architecture enabling deployment of precision instruments to test TTC predictions, transforming dual-use aerospace technologies into instruments of shared scientific validation. Chapter 9: Reconversion of Military Capabilities and Budgetary Reallocation — Proposes a game-theoretically stable reallocation of 20% of global military expenditure (12% scientific, 8% social) toward TTC validation and human development, grounded in the democratizing spirit of the 1918 Córdoba University Reform. Chapter 10: Final Synthesis and Peace Projection — Consolidates the complete TTC v3.2 framework, delineates epistemological boundaries, and affirms the guiding principle: "Si Quieres Paz, Abre El Camino A La Ciencia" (If You Want Peace, Open the Path to Science). All chapters maintain strict mathematical rigor: definitions specify domains, codomains, hypotheses, and functional spaces; lemmas, propositions, and theorems include explicit hypotheses and formal proofs. The framework yields falsifiable predictions for near-future missions (LISA, CMB-S4, DUNE, Euclid, Starship-deployed sensors) while affirming science as a pathway to global cooperation. Author: Adrian G. FernandezAffiliation: Quilmes AstroClub, Buenos Aires, ArgentinaContact: adrianferxxv@gmail.comLicense: Creative Commons Attribution 4.0 InternationalKeywords: Cosmological Thermosynthesis Theory, TTC v3.2, etherion superfluid, emergent gravity, cyclic cosmology, entropic optimization, Starship validation, science diplomacy, non-singular bounce, dark energy dynamics

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selected citations
These citations are derived from selected sources.
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
0
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