Emergence VIII: Classical Physics from Wave Intersections on a Pre-Geometric Canvas

Fuente: Zenodo
Enregistré dans:
Détails bibliographiques
Auteur principal: Ong, Edwin
Format: Recurso digital
Langue:anglais
Publié: Zenodo 2026
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866901858649374720
author Ong, Edwin
author_facet Ong, Edwin
contents <p>This paper completes the Emergence series by deriving all of classical physics from the canvas model introduced in Emergence I. Building on the core equations—the canvas wave equation, threshold condition, quantization, Noether's theorem, and the Born rule—we derive:</p> <p>· Mechanics: Newton's second law, the work‑energy theorem, Hooke's law, and simple harmonic motion.<br>· Electromagnetism: Coulomb's law, Ohm's law, Kirchhoff's laws, AC circuit equations, the Biot‑Savart law, Lenz's law, and the Poynting vector.<br>· Fluid dynamics: The Euler equation, Navier‑Stokes equation, Bernoulli's principle, and Poiseuille flow.<br>· Thermodynamics: The zeroth, first, second, and third laws, the ideal gas law, the Boltzmann distribution, and Carnot efficiency.<br>· Optics: Snell's law and the law of reflection.<br>· Waves: The Doppler effect and standing waves.<br>· Acoustics: The speed of sound.</p> <p>All derivations follow from the same first principles, demonstrating that classical physics is not assumed but emerges naturally from the canvas. The model provides a unified, deterministic, and testable foundation for all of physics.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_19653103
institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Emergence VIII: Classical Physics from Wave Intersections on a Pre-Geometric Canvas
Ong, Edwin
<p>This paper completes the Emergence series by deriving all of classical physics from the canvas model introduced in Emergence I. Building on the core equations—the canvas wave equation, threshold condition, quantization, Noether's theorem, and the Born rule—we derive:</p> <p>· Mechanics: Newton's second law, the work‑energy theorem, Hooke's law, and simple harmonic motion.<br>· Electromagnetism: Coulomb's law, Ohm's law, Kirchhoff's laws, AC circuit equations, the Biot‑Savart law, Lenz's law, and the Poynting vector.<br>· Fluid dynamics: The Euler equation, Navier‑Stokes equation, Bernoulli's principle, and Poiseuille flow.<br>· Thermodynamics: The zeroth, first, second, and third laws, the ideal gas law, the Boltzmann distribution, and Carnot efficiency.<br>· Optics: Snell's law and the law of reflection.<br>· Waves: The Doppler effect and standing waves.<br>· Acoustics: The speed of sound.</p> <p>All derivations follow from the same first principles, demonstrating that classical physics is not assumed but emerges naturally from the canvas. The model provides a unified, deterministic, and testable foundation for all of physics.</p>
title Emergence VIII: Classical Physics from Wave Intersections on a Pre-Geometric Canvas
url https://doi.org/10.5281/zenodo.19653103