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Lorentz Contraction relative to Fresnel dragged reference frame explains Solid-State Michelson-Morley Experiment Null Result: Difference between revisions

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{{Infobox paper
{{Infobox paper
| title = Lorentz Contraction relative to Fresnel dragged reference frame explains Solid-State Michelson-Morley Experiment Null Result
| title = Lorentz Contraction relative to Fresnel dragged reference frame explains Solid-State Michelson-Morley Experiment Null Result
| url = [https://web.archive.org/web/20160315032617/http://redshift.vif.com/JournalFiles/V16NO1PDF/V16N1WAG.pdf Link to paper (Internet Archive)]
| author = [[Dan Wagner]]
| author = [[Dan Wagner]]
| keywords = [[Fitzgerald-Lorentz contraction]], [[Lorentz mass increase]], [[Fresnel dragged reference frame]], [[isotropic]], [[refractive index]]
| keywords = [[Fitzgerald-Lorentz contraction]], [[Lorentz mass increase]], [[Fresnel dragged reference frame]], [[isotropic]], [[refractive index]]
| published = 2009
| published = 2009
| journal = [[Apeiron]]
| journal = [[Apeiron]]
| volume = [[16]]
| volume = 16
| number = [[1]]
| number = 1
| num_pages = 12
| num_pages = 12
| pages = 70-81
| pages = 70-81
}}
}}
'''Read the full paper''' [https://web.archive.org/web/20160315032617/http://redshift.vif.com/JournalFiles/V16NO1PDF/V16N1WAG.pdf here] ''(archived copy — the original link is no longer available)''


==Abstract==
==Abstract==

Latest revision as of 09:26, 21 July 2026

Scientific Paper
TitleLorentz Contraction relative to Fresnel dragged reference frame explains Solid-State Michelson-Morley Experiment Null Result
Read in fullLink to paper (Internet Archive)
Author(s)Dan Wagner
KeywordsFitzgerald-Lorentz contraction, Lorentz mass increase, Fresnel dragged reference frame, isotropic, refractive index
Published2009
JournalApeiron
Volume16
Number1
No. of pages12
Pages70-81

Read the full paper here (archived copy — the original link is no longer available)

Abstract

The formulas for the physical Fitzgerald-Lorentz contraction and the Lorentz mass increase are re-derived based on speed relative to the Fresnel dragged reference frame and on the isotropic speed of light in this reference frame. This derivation leads to length contraction and mass increase formulas which are similar to the current formulas but include the refractive index. The new formulas explain the essentially null result of the Solid-State Michelson-Morley experiment performed by J Shamir and R. Fox and allow a sizeable mass (i.e. as opposed to isolated sub-atomic particles) to be accelerated somewhat beyond the speed of light with only a relatively small mass increase.