k-Foam Theory: Elastic Foam Model of Space and Unified Description of Physical Phenomena

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author sato, t
author_facet sato, t
contents <p>In 1915, Albert Einstein rewrote gravity not as a force, but as the geometric distortion of space. For the next 30 years, he pursued the dream of describing all physical phenomena—including electromagnetism and quantum mechanics—through pure geometry. He was right, but one piece was missing: the physical substance of <em>what</em> was distorting.</p> <p>This paper presents k-Foam Theory, a hypothetical framework that provides this missing piece. Beginning from a simple survival simulation, the theory proposes that space is not a continuous void, but a discrete elastic foam grid comprised of regular octahedra (k=6).</p> <p>By replacing the 'magic' of unexplainable forces with the mechanical topology of k-values (3, 4, and 6), this theory attempts to complete the landscape Einstein envisioned. Five independent physical constants—proton radius, nuclear force range, Weinberg angle, electroweak scale, and Higgs mass—are derived from a single geometric framework with errors within 2%. Additional derivations include the proton mass (0.073% error), lepton generation mass ratios, the dark matter/baryon ratio, and the geometric slip rate of the fine structure constant (α⁻¹ ≈ 137). Furthermore, Maxwell's equations and quantum entanglement are geometrically redefined, demonstrating that photons are not digital coins, but analog vectors.</p> <p>This theory does not negate existing physics but attempts a fundamental reinterpretation of its premises. God does not play dice; there was never a dice to begin with. There is only geometry.</p>
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id zenodo_https___doi_org_10_5281_zenodo_18978504
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language eng
publishDate 2026
publisher Zenodo
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spellingShingle k-Foam Theory: Elastic Foam Model of Space and Unified Description of Physical Phenomena
sato, t
Theoretical Physics
Cosmology
Standard Model
Hubble Tension
Dark Matter
Geometry
Quantum Gravity
quantum entanglement
Maxwell's Equations
Albert Einstein
<p>In 1915, Albert Einstein rewrote gravity not as a force, but as the geometric distortion of space. For the next 30 years, he pursued the dream of describing all physical phenomena—including electromagnetism and quantum mechanics—through pure geometry. He was right, but one piece was missing: the physical substance of <em>what</em> was distorting.</p> <p>This paper presents k-Foam Theory, a hypothetical framework that provides this missing piece. Beginning from a simple survival simulation, the theory proposes that space is not a continuous void, but a discrete elastic foam grid comprised of regular octahedra (k=6).</p> <p>By replacing the 'magic' of unexplainable forces with the mechanical topology of k-values (3, 4, and 6), this theory attempts to complete the landscape Einstein envisioned. Five independent physical constants—proton radius, nuclear force range, Weinberg angle, electroweak scale, and Higgs mass—are derived from a single geometric framework with errors within 2%. Additional derivations include the proton mass (0.073% error), lepton generation mass ratios, the dark matter/baryon ratio, and the geometric slip rate of the fine structure constant (α⁻¹ ≈ 137). Furthermore, Maxwell's equations and quantum entanglement are geometrically redefined, demonstrating that photons are not digital coins, but analog vectors.</p> <p>This theory does not negate existing physics but attempts a fundamental reinterpretation of its premises. God does not play dice; there was never a dice to begin with. There is only geometry.</p>
title k-Foam Theory: Elastic Foam Model of Space and Unified Description of Physical Phenomena
topic Theoretical Physics
Cosmology
Standard Model
Hubble Tension
Dark Matter
Geometry
Quantum Gravity
quantum entanglement
Maxwell's Equations
Albert Einstein
url https://doi.org/10.5281/zenodo.18978504