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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]], [[Schr?dinger's mechanics]], [[theory of relativity]], [[potential dependent inertial mass]]
| 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 = [[10]]
| volume = 10
| number = [[6]]
| 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 Schr?dinger.  We show that only the third and fourth models yield physically reasonable results.
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
TitleCharged Particle Oscillating Near a Capacitor
Author(s)Andre K T Assis
KeywordsWeber's electrodynamics, Schrödinger's mechanics, theory of relativity, potential dependent inertial mass
Published1999
JournalGalilean Electrodynamics
Volume10
Number6
Pages103-105

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.