The Link between Electric Current and Magnetic Field: Difference between revisions
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{{Infobox paper | {{Infobox paper | ||
| title = The Link between Electric Current and Magnetic Field | | title = The Link between Electric Current and Magnetic Field | ||
| url = [http://gsjournal.net/Science-Journals/Research%20Papers-Mechanics%20/%20Electrodynamics/Download/210 Link to paper] | |||
| author = [[David Tombe]] | | author = [[David Tombe]] | ||
| keywords = magnetic field, magnetic fields, electron | |||
| published = 2007 | | published = 2007 | ||
| journal = [[General Science Journal]] | | journal = [[General Science Journal]] | ||
| num_pages = 11 | | num_pages = 11 | ||
}} | }} | ||
'''Read the full paper''' [http://gsjournal.net/Science-Journals/Research%20Papers-Mechanics%20/%20Electrodynamics/Download/210 here] | |||
==Abstract== | ==Abstract== | ||
| Line 11: | Line 15: | ||
It is proposed that the orbital electrons of an atom should be replaced by a much more complicated interaction of rotating electron pairs and rotating electron-positron dipole pairs. This scenario may better explain both magnetic spin moment and electric current inside atomic and molecular matter. Rotating dipoles can act as a source of stored kinetic energy by virtue of magnetization and linear polarization, and the associated solenoidal bonding can provide a link from the orbital electrons through to the magnetic field beyond. The link between electric current and magnetic fields will be explored by reviewing Maxwell's cogwheel/idle wheel mechanism in terms of mutually orbiting pairs. It will then be speculated that a magnetic field acts like a rotationally elastic sponge that soaks up the large scale vorticity of Descartes' universe. | It is proposed that the orbital electrons of an atom should be replaced by a much more complicated interaction of rotating electron pairs and rotating electron-positron dipole pairs. This scenario may better explain both magnetic spin moment and electric current inside atomic and molecular matter. Rotating dipoles can act as a source of stored kinetic energy by virtue of magnetization and linear polarization, and the associated solenoidal bonding can provide a link from the orbital electrons through to the magnetic field beyond. The link between electric current and magnetic fields will be explored by reviewing Maxwell's cogwheel/idle wheel mechanism in terms of mutually orbiting pairs. It will then be speculated that a magnetic field acts like a rotationally elastic sponge that soaks up the large scale vorticity of Descartes' universe. | ||
[[Category:Scientific Paper]] | [[Category:Scientific Paper|link electric current magnetic field]] | ||
[[Category:Aether]] | [[Category:Aether|link electric current magnetic field]] | ||
[[Category:Electrodynamics]] | [[Category:Electrodynamics|link electric current magnetic field]] | ||
Latest revision as of 07:29, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | The Link between Electric Current and Magnetic Field |
| Read in full | Link to paper |
| Author(s) | David Tombe |
| Keywords | magnetic field, magnetic fields, electron |
| Published | 2007 |
| Journal | General Science Journal |
| No. of pages | 11 |
Read the full paper here
Abstract
It is proposed that the orbital electrons of an atom should be replaced by a much more complicated interaction of rotating electron pairs and rotating electron-positron dipole pairs. This scenario may better explain both magnetic spin moment and electric current inside atomic and molecular matter. Rotating dipoles can act as a source of stored kinetic energy by virtue of magnetization and linear polarization, and the associated solenoidal bonding can provide a link from the orbital electrons through to the magnetic field beyond. The link between electric current and magnetic fields will be explored by reviewing Maxwell's cogwheel/idle wheel mechanism in terms of mutually orbiting pairs. It will then be speculated that a magnetic field acts like a rotationally elastic sponge that soaks up the large scale vorticity of Descartes' universe.