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| published = 1992
| published = 1992
| journal = [[Galilean Electrodynamics]]
| journal = [[Galilean Electrodynamics]]
| volume = [[3]]
| volume = 3
| number = [[4]]
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| pages = 66-68
| pages = 66-68
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==Abstract==
==Abstract==


An alternative to the explanation of the redshift by Doppler effect is proposed. Since it has been shown in particle generation by electrtomagnetic interaction and in other examples that a vacuum is not a void, but has a material character, it is reasonable to assume that light waves meet a certain resistance when propagating through vacuum. When a corresponding term is introduced in the wave equation, the solution results in a change of velocity and wavelength, but not in frequency. At the same time there is extinction over very long distances, and this provides a natural explanation of Albers' paradox.[[Category:Scientific Paper]]
An alternative to the explanation of the redshift by Doppler effect is proposed. Since it has been shown in particle generation by electrtomagnetic interaction and in other examples that a vacuum is not a void, but has a material character, it is reasonable to assume that light waves meet a certain resistance when propagating through vacuum. When a corresponding term is introduced in the wave equation, the solution results in a change of velocity and wavelength, but not in frequency. At the same time there is extinction over very long distances, and this provides a natural explanation of Albers' paradox.
 
[[Category:Scientific Paper|cosmological redshift light velocity vacuum]]
 
[[Category:Redshift]]

Latest revision as of 09:28, 21 July 2026

Scientific Paper
TitleCosmological Redshift and Light Velocity in Vacuum
Author(s)Eugene I Shtyrkov
KeywordsDoppler effect, cosmological redshift, light velocity, vacuum
Published1992
JournalGalilean Electrodynamics
Volume3
Number4
Pages66-68

Abstract

An alternative to the explanation of the redshift by Doppler effect is proposed. Since it has been shown in particle generation by electrtomagnetic interaction and in other examples that a vacuum is not a void, but has a material character, it is reasonable to assume that light waves meet a certain resistance when propagating through vacuum. When a corresponding term is introduced in the wave equation, the solution results in a change of velocity and wavelength, but not in frequency. At the same time there is extinction over very long distances, and this provides a natural explanation of Albers' paradox.