Charged Particle Oscillating Near a Capacitor: Difference between revisions
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| title = Charged Particle Oscillating Near a Capacitor | | title = Charged Particle Oscillating Near a Capacitor | ||
| author = [[Andre K T Assis]] | | author = [[Andre K T Assis]] | ||
| keywords = [[Weber's electrodynamics]], [[ | | keywords = [[Weber's electrodynamics]], [[Schrödinger's mechanics]], [[theory of relativity]], [[potential dependent inertial mass]] | ||
| published = 1999 | | published = 1999 | ||
| journal = [[Galilean Electrodynamics]] | | journal = [[Galilean Electrodynamics]] | ||
| volume = | | volume = 10 | ||
| number = | | number = 6 | ||
| pages = 103-105 | | pages = 103-105 | ||
}} | }} | ||
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==Abstract== | ==Abstract== | ||
We study the oscillation of a charged particle near a capacitor in four different models: Classical me-chanics, Weber's electrodynamics plus classical mechanics, relativistic mechanics, and Weber's electrodynamics plus the mechanics of Erwin | We study the oscillation of a charged particle near a capacitor in four different models: Classical me-chanics, Weber's electrodynamics plus classical mechanics, relativistic mechanics, and Weber's electrodynamics plus the mechanics of Erwin Schrödinger. We show that only the third and fourth models yield physically reasonable results. | ||
[[Category:Scientific Paper|charged particle oscillating near capacitor]] | [[Category:Scientific Paper|charged particle oscillating near capacitor]] | ||
[[Category:Relativity]] | [[Category:Relativity|charged particle oscillating near capacitor]] | ||
Latest revision as of 09:17, 22 July 2026
| Scientific Paper | |
|---|---|
| Title | Charged Particle Oscillating Near a Capacitor |
| Author(s) | Andre K T Assis |
| Keywords | Weber's electrodynamics, Schrödinger's mechanics, theory of relativity, potential dependent inertial mass |
| Published | 1999 |
| Journal | Galilean Electrodynamics |
| Volume | 10 |
| Number | 6 |
| Pages | 103-105 |
Abstract
We study the oscillation of a charged particle near a capacitor in four different models: Classical me-chanics, Weber's electrodynamics plus classical mechanics, relativistic mechanics, and Weber's electrodynamics plus the mechanics of Erwin Schrödinger. We show that only the third and fourth models yield physically reasonable results.