Straight Line Motion: Difference between revisions
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Straight Line Motion |
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{{Infobox paper | |||
| title = Straight Line Motion | |||
| author = [[David Tombe]] | |||
| published = 2018 | |||
| url = https://www.gsjournal.net/Science-Journals/Research%20Papers-Mechanics%20/%20Electrodynamics/Download/7305 | |||
}} | |||
==Abstract== | |||
The straight line inertial path will be examined from the perspective that it is caused by pressure equilibrium in a sea of tiny aethereal whirlpools that are pressing against each other with centrifugal force while striving to dilate. This is opposite to the traditional perspective whereby centrifugal force is considered to be a consequence of the tendency of a body to move in uniform straight line motion in the absence of any Newtonian forces. | The straight line inertial path will be examined from the perspective that it is caused by pressure equilibrium in a sea of tiny aethereal whirlpools that are pressing against each other with centrifugal force while striving to dilate. This is opposite to the traditional perspective whereby centrifugal force is considered to be a consequence of the tendency of a body to move in uniform straight line motion in the absence of any Newtonian forces. | ||
[[Category:Scientific Paper|straight line motion]] | |||
[[Category:Gravity|straight line motion]] | |||
Latest revision as of 07:06, 22 July 2026
| Scientific Paper | |
|---|---|
| Title | Straight Line Motion |
| Read in full | https://www.gsjournal.net/Science-Journals/Research%20Papers-Mechanics%20/%20Electrodynamics/Download/7305 |
| Author(s) | David Tombe |
| Published | 2018 |
Abstract
The straight line inertial path will be examined from the perspective that it is caused by pressure equilibrium in a sea of tiny aethereal whirlpools that are pressing against each other with centrifugal force while striving to dilate. This is opposite to the traditional perspective whereby centrifugal force is considered to be a consequence of the tendency of a body to move in uniform straight line motion in the absence of any Newtonian forces.