Maxwell's Electrodynamics Without Special Relativity Theory (Part I): Difference between revisions
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{{Infobox paper | {{Infobox paper | ||
| title = Maxwell | | title = Maxwell's Electrodynamics Without Special Relativity Theory (Part I) | ||
| author = [[Victor N Barykin]] | | author = [[Victor N Barykin]] | ||
| keywords = special relativity theory, electrodynamics, Maxwell | |||
| published = 2002 | | published = 2002 | ||
| journal = [[Galilean Electrodynamics]] | | journal = [[Galilean Electrodynamics]] | ||
| volume = | | volume = 13 | ||
| number = | | number = 2 | ||
| pages = 29-32 | | pages = 29-32 | ||
}} | }} | ||
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==Abstract== | ==Abstract== | ||
This work suggests for Maxwell's electrodynamics in moving media a generalization that 1) does not resort to Einstein | This work suggests for Maxwell's electrodynamics in moving media a generalization that 1) does not resort to Einstein's special relativity theory, 2) bases its calculations and experiments on Newton's space, 3) naturally incorporates superluminal velocities and indicates the requirements for the latter to be discovered, and 4) describes in a unified manner the classical experiments of Bradley, Fizeau, Michelson, and Doppler. | ||
[[Category:Scientific Paper|maxwell s electrodynamics special relativity theory]] | [[Category:Scientific Paper|maxwell s electrodynamics special relativity theory]] | ||
[[Category:Relativity|maxwell s electrodynamics special relativity theory]] | [[Category:Relativity|maxwell s electrodynamics special relativity theory]] | ||
Latest revision as of 09:36, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | Maxwell's Electrodynamics Without Special Relativity Theory (Part I) |
| Author(s) | Victor N Barykin |
| Keywords | special relativity theory, electrodynamics, Maxwell |
| Published | 2002 |
| Journal | Galilean Electrodynamics |
| Volume | 13 |
| Number | 2 |
| Pages | 29-32 |
Abstract
This work suggests for Maxwell's electrodynamics in moving media a generalization that 1) does not resort to Einstein's special relativity theory, 2) bases its calculations and experiments on Newton's space, 3) naturally incorporates superluminal velocities and indicates the requirements for the latter to be discovered, and 4) describes in a unified manner the classical experiments of Bradley, Fizeau, Michelson, and Doppler.