In-Depth Development of Classical Electrodynamics: Difference between revisions
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{{Infobox paper | {{Infobox paper | ||
| title = In-Depth Development of Classical Electrodynamics | | title = In-Depth Development of Classical Electrodynamics | ||
| url = [https://web.archive.org/web/20111011124636/http://www.ptep-online.com/index_files/complete/PP-01-2008.pdf Link to paper (Internet Archive)] | |||
| author = [[Yuri N Keilman]] | | author = [[Yuri N Keilman]] | ||
| keywords = classical electrodynamics, unified field theory, electromagnetic field | |||
| published = 2008 | | published = 2008 | ||
| journal = [[Progress In Physics]] | | journal = [[Progress In Physics]] | ||
| volume = | | volume = 1 | ||
| pages = 6-15 | | pages = 6-15 | ||
}} | }} | ||
'''Read the full paper''' [https://web.archive.org/web/20111011124636/http://www.ptep-online.com/index_files/complete/PP-01-2008.pdf here] ''(archived copy — the original link is no longer available)'' | |||
==Abstract== | ==Abstract== | ||
There is hope that a properly developed Classical Electrodynamics (CED) will be able to play a role in a unified field theory explaining electromagnetism, quantum phenomena, and gravitation. There is much work that has to be done in this direction. In this article we propose a move towards this aim by refining the basic principles of an improved CED. Attention is focused on the reinterpretation of the E-M potential. We use these basic principles to obtain solutions that explain the interactions between a constant electromagnetic field and a thin layer of material continuum; between a constant electromagnetic field and a spherical configuration of material continuum (for a charged elementary particle); between a transverse electromagnetic wave and a material continuum; between a longitudinal aether wave (dummy wave) and a material continuum.[[Category:Scientific Paper]] | There is hope that a properly developed Classical Electrodynamics (CED) will be able to play a role in a unified field theory explaining electromagnetism, quantum phenomena, and gravitation. There is much work that has to be done in this direction. In this article we propose a move towards this aim by refining the basic principles of an improved CED. Attention is focused on the reinterpretation of the E-M potential. We use these basic principles to obtain solutions that explain the interactions between a constant electromagnetic field and a thin layer of material continuum; between a constant electromagnetic field and a spherical configuration of material continuum (for a charged elementary particle); between a transverse electromagnetic wave and a material continuum; between a longitudinal aether wave (dummy wave) and a material continuum. | ||
[[Category:Scientific Paper|in-depth development classical electrodynamics]] | |||
[[Category:Gravity]] | [[Category:Gravity|in-depth development classical electrodynamics]] | ||
Latest revision as of 09:32, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | In-Depth Development of Classical Electrodynamics |
| Read in full | Link to paper (Internet Archive) |
| Author(s) | Yuri N Keilman |
| Keywords | classical electrodynamics, unified field theory, electromagnetic field |
| Published | 2008 |
| Journal | Progress In Physics |
| Volume | 1 |
| Pages | 6-15 |
Read the full paper here (archived copy — the original link is no longer available)
Abstract
There is hope that a properly developed Classical Electrodynamics (CED) will be able to play a role in a unified field theory explaining electromagnetism, quantum phenomena, and gravitation. There is much work that has to be done in this direction. In this article we propose a move towards this aim by refining the basic principles of an improved CED. Attention is focused on the reinterpretation of the E-M potential. We use these basic principles to obtain solutions that explain the interactions between a constant electromagnetic field and a thin layer of material continuum; between a constant electromagnetic field and a spherical configuration of material continuum (for a charged elementary particle); between a transverse electromagnetic wave and a material continuum; between a longitudinal aether wave (dummy wave) and a material continuum.