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==Abstract==
==Abstract==


We will show that the Lorentz transformation applies in Galilean space-time, such that the laws of electromagnetism and classical mechanics become invariant. Assuming the existence of a gas permeating all space and matter, we conclude that the mechanical properties of gases, known for over a century, are sufficient to explain the known physical phenomena such as electromagnetism, light propagation, gravitation, quantum mechanics and the structure of elementary particles, including the photon.[[Category:Scientific Paper]]
We will show that the Lorentz transformation applies in Galilean space-time, such that the laws of electromagnetism and classical mechanics become invariant. Assuming the existence of a gas permeating all space and matter, we conclude that the mechanical properties of gases, known for over a century, are sufficient to explain the known physical phenomena such as electromagnetism, light propagation, gravitation, quantum mechanics and the structure of elementary particles, including the photon.


[[Category:Gravity]]
[[Category:Scientific Paper|ether revisied]]
[[Category:Aether]]
 
[[Category:Gravity|ether revisied]]
[[Category:Aether|ether revisied]]

Latest revision as of 22:01, 1 January 2017

Scientific Paper
TitleThe Ether Revisied
Author(s)Adolphe Martin
Keywordsether, space-time, electromagnetism, gas, matter, light propagation, gravitation, quantum mechanics, elementary particles, photon
Published1994
JournalNone
Pages209-216

Abstract

We will show that the Lorentz transformation applies in Galilean space-time, such that the laws of electromagnetism and classical mechanics become invariant. Assuming the existence of a gas permeating all space and matter, we conclude that the mechanical properties of gases, known for over a century, are sufficient to explain the known physical phenomena such as electromagnetism, light propagation, gravitation, quantum mechanics and the structure of elementary particles, including the photon.