On the Physical Meaning of the Uncertainty Relation: Difference between revisions
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| title = On the Physical Meaning of the Uncertainty Relation | | title = On the Physical Meaning of the Uncertainty Relation | ||
| author = [[Nikolay Chavarga]] | | author = [[Nikolay Chavarga]] | ||
| keywords = uncertainty, wavelength, photon | |||
| published = 2008 | | published = 2008 | ||
| journal = [[Galilean Electrodynamics]] | | journal = [[Galilean Electrodynamics]] | ||
| volume = | | volume = 19 | ||
| number = | | number = S2 | ||
| pages = 34-41 | | pages = 34-41 | ||
}} | }} | ||
| Line 11: | Line 12: | ||
==Abstract== | ==Abstract== | ||
The uncertainty relation is obtained in the supposition, that a photon is a soliton formation, and the photon | The uncertainty relation is obtained in the supposition, that a photon is a soliton formation, and the photon's length coincides with its wavelength. The formula for the diffraction lattice is obtained. The alternative explanation of the dependence of the resolution of the telescope objective on the photons' wavelength and on the objective's diameter is proposed. The alternative explanation of Michelson's interferometer functioning is proposed. The experiment scheme for the additional testing of the made assumptions is proposed. | ||
[[Category:Scientific Paper|physical meaning uncertainty relation]] | [[Category:Scientific Paper|physical meaning uncertainty relation]] | ||
Latest revision as of 07:31, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | On the Physical Meaning of the Uncertainty Relation |
| Author(s) | Nikolay Chavarga |
| Keywords | uncertainty, wavelength, photon |
| Published | 2008 |
| Journal | Galilean Electrodynamics |
| Volume | 19 |
| Number | S2 |
| Pages | 34-41 |
Abstract
The uncertainty relation is obtained in the supposition, that a photon is a soliton formation, and the photon's length coincides with its wavelength. The formula for the diffraction lattice is obtained. The alternative explanation of the dependence of the resolution of the telescope objective on the photons' wavelength and on the objective's diameter is proposed. The alternative explanation of Michelson's interferometer functioning is proposed. The experiment scheme for the additional testing of the made assumptions is proposed.