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| published = 1989
| published = 1989
| journal = [[Physics Essays]]
| journal = [[Physics Essays]]
| volume = [[2]]
| volume = 2
| number = [[2]]
| number = 2
| pages = 186-190
| pages = 186-190
}}
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==Abstract==
==Abstract==


Assuming that a moving body possesses a field surrounding it, two coupled equations are derived to describe the state of the field and the motion of the body. These coupled equations lead to Schr?dinger's equation as well as to the equations of a Lorentz transformation; i.e., the equations of the special theory of relativity. These equations also provide results for motion in gravitational fields of bodies consistent with Newtonian and Einsteinian theories.
Assuming that a moving body possesses a field surrounding it, two coupled equations are derived to describe the state of the field and the motion of the body. These coupled equations lead to Schrödinger's equation as well as to the equations of a Lorentz transformation; i.e., the equations of the special theory of relativity. These equations also provide results for motion in gravitational fields of bodies consistent with Newtonian and Einsteinian theories.


[[Category:Scientific Paper|examination equations motion using concept field existing moving objects]]
[[Category:Scientific Paper|examination equations motion using concept field existing moving objects]]


[[Category:Relativity|examination equations motion using concept field existing moving objects]]
[[Category:Relativity|examination equations motion using concept field existing moving objects]]
[[Category:Quantum Theory]]

Latest revision as of 09:23, 22 July 2026

Scientific Paper
TitleAn Examination of the Equations of Motion Using the Concept of a Field Existing Around Moving Objects
Author(s)[[]]
Keywordsfield around moving objects, Schr?, dinger's wave equation, quantum mechanics, theories of relativity, gravitational potential
Published1989
JournalPhysics Essays
Volume2
Number2
Pages186-190

Abstract

Assuming that a moving body possesses a field surrounding it, two coupled equations are derived to describe the state of the field and the motion of the body. These coupled equations lead to Schrödinger's equation as well as to the equations of a Lorentz transformation; i.e., the equations of the special theory of relativity. These equations also provide results for motion in gravitational fields of bodies consistent with Newtonian and Einsteinian theories.