This technical handbook establishes the empirical blueprint and physical assembly protocols for compiling a continuous-operation, space-ready topological quantum computer. By leveraging a pure, expanded Fibonacci aperiodic lattice (alpha=7.5) and macroscopic static magnetic fields, the G3 DS 987 architecture operates reliably at liquid nitrogen temperatures (77K) or deep-space environments with zero active energy consumption while idle. The processor abandons complex acoustic drives, random defects (TAI), and nanometric fabrication in favor of a purely magnetic mechanism (1.0T Neodymium static flux) to break Time-Reversal Symmetry and establish a Many-Body Localization (MBL) chiral edge current. Featuring a pristine 987-node geometry, the central nodes are deterministically excised to form a 'Holographic Cavity' for global radial addressing via microwave pulse injection (AWG), with peripheral extraction via Gold I/O RF voltage sensors. The 'Medium Variant' reduces production costs to absolute minimums by utilizing an 'Optical Sandwich' architecture—a pre-milled thin metallic film (generated via an automated Python DXF/PDF script) glued between two 120mm transparent polycarbonate discs, identical to 1990s commercial DVD infrastructure. This passive, solid-state system fits within a standard 5.25-inch drive bay (2U server rack) and is inherently immune to cosmic radiation, making it an accessible, plug-and-play core for data centers and extra-terrestrial deployment. Includes ab-initio verification laboratories under registered patents of the Industrial Island Research Institute.
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Yaron Admon Hefetz (2026) studied this question.
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