Light Speed as a Function of Gravitational Potential: Difference between revisions
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| published = 1990 | | published = 1990 | ||
| journal = [[Galilean Electrodynamics]] | | journal = [[Galilean Electrodynamics]] | ||
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| pages = 15-17 | | pages = 15-17 | ||
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==Abstract== | ==Abstract== | ||
'''Summary: '''Beckmann makes the case that light speed is constant with respect to the gravitational field. His model, however, does not specify how the speed varies with such things as the mass of the locally dominant body and its distance from the point of interest. In the present paper, we derive the result from the conservation of energy, and use it to predict the reflection of starlight. The results agree with those of General Relativity Theory, and more importantly with measurement. | '''Summary: '''Beckmann makes the case that light speed is constant with respect to the gravitational field. His model, however, does not specify how the speed varies with such things as the mass of the locally dominant body and its distance from the point of interest. In the present paper, we derive the result from the conservation of energy, and use it to predict the reflection of starlight. The results agree with those of General Relativity Theory, and more importantly with measurement. | ||
[[Category:Gravity]] | [[Category:Scientific Paper|light speed function gravitational potential]] | ||
[[Category:Relativity]] | |||
[[Category:Gravity|light speed function gravitational potential]] | |||
[[Category:Relativity|light speed function gravitational potential]] | |||
[[Category:Light]] | |||
Latest revision as of 09:21, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | Light Speed as a Function of Gravitational Potential |
| Author(s) | Howard C Hayden |
| Keywords | light speed, gravitational potential, GRT, mass, distance, point of interest, atarlight |
| Published | 1990 |
| Journal | Galilean Electrodynamics |
| Volume | 1 |
| Number | 2 |
| Pages | 15-17 |
Abstract
Summary: Beckmann makes the case that light speed is constant with respect to the gravitational field. His model, however, does not specify how the speed varies with such things as the mass of the locally dominant body and its distance from the point of interest. In the present paper, we derive the result from the conservation of energy, and use it to predict the reflection of starlight. The results agree with those of General Relativity Theory, and more importantly with measurement.