
doi: 10.5281/zenodo.21762330 , 10.5281/zenodo.17990984 , 10.5281/zenodo.21186295 , 10.5281/zenodo.19364598 , 10.5281/zenodo.19201671 , 10.5281/zenodo.17814058 , 10.5281/zenodo.15758776 , 10.5281/zenodo.21541927 , 10.5281/zenodo.15850293 , 10.5281/zenodo.19153323 , 10.5281/zenodo.16902895 , 10.5281/zenodo.17041865 , 10.5281/zenodo.15710719 , 10.5281/zenodo.16934973
doi: 10.5281/zenodo.21762330 , 10.5281/zenodo.17990984 , 10.5281/zenodo.21186295 , 10.5281/zenodo.19364598 , 10.5281/zenodo.19201671 , 10.5281/zenodo.17814058 , 10.5281/zenodo.15758776 , 10.5281/zenodo.21541927 , 10.5281/zenodo.15850293 , 10.5281/zenodo.19153323 , 10.5281/zenodo.16902895 , 10.5281/zenodo.17041865 , 10.5281/zenodo.15710719 , 10.5281/zenodo.16934973
Added math preface I BELIEVE THIS VERSION REPRESENTS THE MOST COMPLETE ONTOLOGICA Abstract This paper presents a novel mechanical framework for universal physics, the Space Compression Model (SCM), derived from nine years of direct visual observation of atomic structures. Utilizing high-resolution projection through Atomic Gravitational Lensing, we identify the atom as a separable gyroscopic system consisting of a Central Compression Core (CCC)—a one-way spatial intake—and an outer boundary of nested density spheres. We demonstrate how this singular mechanical engine simultaneously resolves multiple foundational gaps in modern physics: it provides the physical machinery for Electromagnetism (shared helical tracks), identifies Gravity as a volumetric consumption gradient, and offers a mechanical resolution to the Yang-Mills Mass Gap by defining mass as trapped kinetic momentum (Kinetic Capture). By differentiating these structures from standard optical artifacts, we establish a rigorous, repeatable methodology for the direct observation of quantum mechanical systems.
Molecular nesting, New Physics, Physics, ToE, Experimental physics, Empirical Research, Theory of everything, Atomic physics
Molecular nesting, New Physics, Physics, ToE, Experimental physics, Empirical Research, Theory of everything, Atomic physics
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