Planck's Constant and Path Differences: Difference between revisions
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{{Infobox paper | {{Infobox paper | ||
| title = Planck | | title = Planck's Constant and Path Differences | ||
| author = [[Jonathan Yalley]] | | author = [[Jonathan Yalley]] | ||
| keywords = Planck's constant, electromagnetic radiation, Uncertainty Principle, quantum mechanics | |||
| published = 2007 | | published = 2007 | ||
| journal = [[Galilean Electrodynamics]] | | journal = [[Galilean Electrodynamics]] | ||
| volume = | | volume = 18 | ||
| number = | | number = 6 | ||
| pages = 112-117 | | pages = 112-117 | ||
}} | }} | ||
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==Abstract== | ==Abstract== | ||
This paper develops analogies between diffraction effects seen in electromagnetic radiation and the uncertainty principle embedded in quantum mechanics. It expresses a new physical interpretation for Planck's constant in terms of path differences. Using the multiphase wave nature of electromagnetic radiation, a statistical understanding of path difference and of Planck's constant is given.[[Category:Scientific Paper]] | This paper develops analogies between diffraction effects seen in electromagnetic radiation and the uncertainty principle embedded in quantum mechanics. It expresses a new physical interpretation for Planck's constant in terms of path differences. Using the multiphase wave nature of electromagnetic radiation, a statistical understanding of path difference and of Planck's constant is given. | ||
[[Category:Scientific Paper|planck 's constant path differences]] | |||
Latest revision as of 09:38, 21 July 2026
| Scientific Paper | |
|---|---|
| Title | Planck's Constant and Path Differences |
| Author(s) | Jonathan Yalley |
| Keywords | Planck's constant, electromagnetic radiation, Uncertainty Principle, quantum mechanics |
| Published | 2007 |
| Journal | Galilean Electrodynamics |
| Volume | 18 |
| Number | 6 |
| Pages | 112-117 |
Abstract
This paper develops analogies between diffraction effects seen in electromagnetic radiation and the uncertainty principle embedded in quantum mechanics. It expresses a new physical interpretation for Planck's constant in terms of path differences. Using the multiphase wave nature of electromagnetic radiation, a statistical understanding of path difference and of Planck's constant is given.