Centrifugal Force in the Electric Circuit: Difference between revisions
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{{Infobox paper | {{Infobox paper | ||
| title = Centrifugal Force in the Electric Circuit | | title = Centrifugal Force in the Electric Circuit | ||
| url = [http://gsjournal.net/Science-Journals/Research%20Papers-Mechanics%20/%20Electrodynamics/Download/246 Link to paper] | |||
| author = [[David Tombe]] | | author = [[David Tombe]] | ||
| keywords = [[centrifugal force]] | | keywords = [[centrifugal force]] | ||
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| num_pages = 7 | | num_pages = 7 | ||
}} | }} | ||
'''Read the full paper''' [http://gsjournal.net/Science-Journals/Research%20Papers-Mechanics%20/%20Electrodynamics/Download/246 here] | |||
==Abstract== | ==Abstract== | ||
Latest revision as of 18:50, 18 July 2026
| Scientific Paper | |
|---|---|
| Title | Centrifugal Force in the Electric Circuit |
| Read in full | Link to paper |
| Author(s) | David Tombe |
| Keywords | centrifugal force |
| Published | 2009 |
| Journal | General Science Journal |
| No. of pages | 7 |
Read the full paper here
Abstract
The centrifugal force is heavily involved in electromagnetism. It is involved in the magnetic force that acts on a current carrying wire and it is also involved in the electromotive force that induces an electric current in a wire that is moving in a magnetic field. In the former case it is a simple centrifugal force of the kind that keeps the planets in orbit, whereas in the latter case it is a compound centrifugal force which bears close similarities to the transverse Coriolis force that acts in non-circular planetary orbits and in all vortex phenomena.