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The Three-Domain Fractal Universe: Baryonic, Tachyonic and Sub-Zero Layers in QTG - Conceptual Notes and Extensions

Angeli, Nazareno

Abstract

Formalization of the three-domain fractal ontology of the universe derived from the Quantum Tachyonic Gravity (QTG) framework. We distinguish three oscillatory regimes - Baryonic, Tachyonic, and Sub-Zero - each separated by inertial thresholds defined by the speed of light (c) and the baryonic thermal limit (0 K). These layers are not spatial dimensions, but phases of oscillatory coherence - (de)coherent, incoherent, and super-coherent. Explaination of the Sub-Zero Domain Oscillatory Domain. We argue that 0 K represents not an absolute thermal limit, but the upper boundary of baryonic inertia, beyond which oscillatory behaviour persists only in the shadow-mass domain (incoherent potential energy/mass). Extention A: Superconductivity reframed in QTG. At cryogenic temperatures, baryonic oscillations lose amplitude, allowing shadow-mass coherence to dominate. This produces frictionless collective motion without resistance by allowing shadow components to synchronize into coherent transport layer. Extention B: How Near-0 K Bridges the Oscillatory Domains in Quantum Computing. Explaining why Quantum Computers require operation near 0 K, and why coherence become possible only under extreme cryogenic conditions.

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The Three-Domain Fractal Universe: Baryonic, Tachyonic, and Sub-Zero Layers in QTG Author: Nazareno Angeli Abstract This paper formalizes a three-domain fractal ontology of the universe derived from the Quantum Tachyonic Gravity (QTG) framework. We distinguish three oscillatory regimes— Baryonic, Tachyonic, and Sub-Zero—each separated by inertial thresholds defined by the speed of light (c) and the baryonic thermal limit (0 K). These layers are not spatial dimensions but phases of oscillatory coherence. This structure explains quantum phenomena, relativistic behavior, coherence regimes, vacuum energy, and the emergence of matter. 1. Introduction The observable universe is only one layer of a deeper oscillatory structure. QTG proposes that inertia governs visibility: oscillatory modes above the C-boundary become baryonic; below C they remain probabilistic (tachyonic); below 0 K they enter a supercoherent regime (Sub-Zero Domain). 2. Layer I: The Baryonic Domain This is the visible spacetime universe. Characteristics: - Oscillations strong enough to cross c into visibility - Mass, geometry, and inertia manifest - Decoherence dominates - Temperature exists - Gravity and EM fields are shadow projections of deeper oscillatory structures This domain represents mid-level coherence. 3. Layer II: The Tachyonic (Shadow-Mass) Domain The Tachyonic Domain is composed of oscillations that remain below c and therefore do not acquire baryonic inertia or visibility. Properties: - No mass, only inertia gradients - Probabilistic behavior dominates - Entanglement and tunneling originate here - 'Time' corresponds to potential collapse - Decoherence = projection into baryonic form This is the incoherent fractal layer—the quantum probability fog. 4. Layer III: The Sub-Zero Domain Contrary to classical assumptions, oscillations do not stop at 0 K. Only baryonic oscillations freeze. Shadow-mass oscillations continue unrestricted below that threshold. Properties: - Infinite baryonic inertia → zero baryonic motion - Shadow oscillations remain active and coherent - No thermal signature - No decoherence - Information propagates instantly - Foundation for vacuum energy and field uniformity This is the hyper-coherent layer of the universe. 5. Inertial Thresholds Two universal inertial boundaries define the transitions between layers: A) C-Boundary (Speed of Light) - Zero inertia threshold - Below c: shadow-mass oscillations - Above c: baryonic visibility B) 0 K Boundary (Absolute Thermal Limit) - Infinite baryonic inertia - Oscillation shifts from baryonic to shadow-dominant - Below 0 K: Sub-Zero supercoherent regime 6. Fractal Interpretation The universe behaves as a fractal of oscillatory domains. Each domain projects into the next through inertial phase transitions. Matter, fields, time flow, and quantum states are emergent projections of deeper oscillatory layers. 7. Phenomena Explained This framework provides elegant explanations for several difficult phenomena: *Superconductivity & Superfluidity:* baryonic inertia becomes so high shadow-mass coherence takes over. *Quantum coherence:* Sub-Zero oscillations maintain perfect synchronization. *Entanglement:* correlations propagated through the Sub-Zero domain. *Casimir effect:* interference between baryonic oscillations and Sub-Zero shadow modes. *Vacuum energy:* persistent Sub-Zero oscillations misinterpreted as 'fluctuations'. 8. Cosmological Implications Dark matter may correspond to persistent shadow-mass curvature from the Tachyonic layer. Dark energy may represent large-scale Sub-Zero oscillatory stabilization. Inflation and baryogenesis become boundary transition events across the three domains. 9. Conclusion QTG’s three-domain fractal universe unifies quantum mechanics, gravity, thermodynamics, and field behavior. Inertia is revealed as the fundamental regulator of visibility, coherence, and physical emergence. This layered ontology provides a coherent alternative to multiverse theory and particle proliferation. The universe is not a chaotic system: it is a structured fractal of oscillatory domains, each feeding and shaping the next.