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{{Infobox scientist
{{Infobox scientist
| name = Jir St?vek
| name = Jiří Stávek
| alt = Jir St?vek
| alt = Jiří Stávek
| residence = 163 00 Prague, Czech Republic
| residence = 163 00 Prague, Czech Republic
}}
}}


[[Category:Scientist|St?vek Jir]]
'''Jiří Stávek''' is a Czech independent researcher based in Prague, Czech Republic, who publishes on the foundations of physics. His work concentrates on geometrical and trigonometric reinterpretations of classical and quantum physics, including models of the photon, the interpretation of entanglement, and the geometrical meaning of the fundamental physical constants.
 
==Biography==
Stávek works as an independent researcher from Prague, Czech Republic. He is not attached to a university physics department, and describes his own approach as building on the work of what he calls the "Old Masters" (researchers active before 1905), the "New Masters" (those active after 1905) and the "Dissidents", taking as his particular guides Louis de Broglie and David Bohm.
 
==Work==
Stávek's papers return repeatedly to a small set of themes:
 
* '''Models of the photon.''' He has proposed a "core-shell" and a "super-elastic double-helix" model of the photon, in which a Huygens–de Broglie particle travels a helical path guided by what he calls the Newton–Bohm entangled helical evolute.
* '''Entanglement and the double-slit experiment.''' Several papers apply trigonometric functions to the correlation events of entangled particles and to the behaviour of individual electrons in the double-slit experiment.
* '''Geometry of the classical orbits.''' He has re-derived Kepler's ellipse, Newton's hyperbola and the parabolic orbits of Galileo and Newton using classical constructions, observing them from Pappus' directrix, Apollonius' pedal curve, Newton's evolute, Leibniz's subtangent and subnormal, Castillon's cardioid and Ptolemy's circle (the hodograph).
* '''Interpretation of the physical constants.''' He has offered geometrical readings of the Planck distribution function and Planck's oscillators (Wien peaks, the Bohm sheath criterion, a plasma coupling constant, a "Hubble cooling constant"), and has interpreted the Rydberg constant as a Gaussian curvature within a Gauss–Bohr–de Broglie model.
* '''Colour and spectra.''' He has published on trigonometric descriptions of the spectral colours as a way of extracting information carried by photons.
 
==Publications==
Stávek publishes chiefly in the journal ''Applied Physics Research'' (Canadian Center of Science and Education) and posts preprints on ResearchGate. Representative papers include:
 
* "Two Free-Will Partners Sharing Photons from a Photon Pair Emitted from Non-Linear Crystals", ''Applied Physics Research'', Vol. 5, No. 6, 2013.
* "On the Trigonometric Descriptions of Colors", 2016.
* "Trigonometric Functions Above and Below of the Double-Slit Barrier", ''Applied Physics Research'', Vol. 9, No. 3, 2017.
* "Newton's Parabola Observed from Pappus' Directrix, Apollonius' Pedal Curve (Line), Newton's Evolute, Leibniz's Subtangent and Subnormal, Castillon's Cardioid, and Ptolemy's Circle (Hodograph)", 2019.
* "Galileo's Parabola Observed from Pappus' Directrix, Apollonius' Pedal Curve (Line), Galileo's Empty Focus, Newton's Evolute, Leibniz's Subtangent and Subnormal, Ptolemy's Circle (Hodograph), and Dürer-Simon Parabola", 2019.
* "Super-Elastic Double-Helix Model of Photon. Huygens-de Broglie Particle on the Helical Path Guided by the Newton-Bohm Entangled Helical Evolute", ''Applied Physics Research'', Vol. 11, 2019.
* "How to Understand the Planck's Oscillators? Wien Peaks, Planck Distribution Function and Its Decomposition, the Bohm Sheath Criterion, Plasma Coupling Constant, the Barrier of Determinacy, Hubble Cooling Constant", ''Applied Physics Research'', Vol. 12, No. 4, 2020.
* "The Rydberg Constant Interpreted as the Gaussian Curvature, Gauss-Bohr-de Broglie Model – Two Shadow Projections of the Helix, Unlocking of the Fixed Constant c of the Speed of Light – New Tests for Old Physics", 2021.
* "Entanglement Interpreted as the Cooperation Between the Super-Elastic Double-Helix Photons and the Super-Elastic Double-Helix Gravitons. Quantum Cavendish Experiment", ''Applied Physics Research'', Vol. 13, No. 1, 2021.
 
==External links==
* [https://www.researchgate.net/scientific-contributions/2017129981_Jiri_Stavek Jiří Stávek on ResearchGate]
* [https://ccsenet.org/journal/index.php/apr ''Applied Physics Research'' (Canadian Center of Science and Education)]
 
[[Category:Scientist|Stavek Jiri]]

Latest revision as of 10:34, 20 July 2026

Jiří Stávek
Residence163 00 Prague, Czech Republic

Jiří Stávek is a Czech independent researcher based in Prague, Czech Republic, who publishes on the foundations of physics. His work concentrates on geometrical and trigonometric reinterpretations of classical and quantum physics, including models of the photon, the interpretation of entanglement, and the geometrical meaning of the fundamental physical constants.

Biography

Stávek works as an independent researcher from Prague, Czech Republic. He is not attached to a university physics department, and describes his own approach as building on the work of what he calls the "Old Masters" (researchers active before 1905), the "New Masters" (those active after 1905) and the "Dissidents", taking as his particular guides Louis de Broglie and David Bohm.

Work

Stávek's papers return repeatedly to a small set of themes:

  • Models of the photon. He has proposed a "core-shell" and a "super-elastic double-helix" model of the photon, in which a Huygens–de Broglie particle travels a helical path guided by what he calls the Newton–Bohm entangled helical evolute.
  • Entanglement and the double-slit experiment. Several papers apply trigonometric functions to the correlation events of entangled particles and to the behaviour of individual electrons in the double-slit experiment.
  • Geometry of the classical orbits. He has re-derived Kepler's ellipse, Newton's hyperbola and the parabolic orbits of Galileo and Newton using classical constructions, observing them from Pappus' directrix, Apollonius' pedal curve, Newton's evolute, Leibniz's subtangent and subnormal, Castillon's cardioid and Ptolemy's circle (the hodograph).
  • Interpretation of the physical constants. He has offered geometrical readings of the Planck distribution function and Planck's oscillators (Wien peaks, the Bohm sheath criterion, a plasma coupling constant, a "Hubble cooling constant"), and has interpreted the Rydberg constant as a Gaussian curvature within a Gauss–Bohr–de Broglie model.
  • Colour and spectra. He has published on trigonometric descriptions of the spectral colours as a way of extracting information carried by photons.

Publications

Stávek publishes chiefly in the journal Applied Physics Research (Canadian Center of Science and Education) and posts preprints on ResearchGate. Representative papers include:

  • "Two Free-Will Partners Sharing Photons from a Photon Pair Emitted from Non-Linear Crystals", Applied Physics Research, Vol. 5, No. 6, 2013.
  • "On the Trigonometric Descriptions of Colors", 2016.
  • "Trigonometric Functions Above and Below of the Double-Slit Barrier", Applied Physics Research, Vol. 9, No. 3, 2017.
  • "Newton's Parabola Observed from Pappus' Directrix, Apollonius' Pedal Curve (Line), Newton's Evolute, Leibniz's Subtangent and Subnormal, Castillon's Cardioid, and Ptolemy's Circle (Hodograph)", 2019.
  • "Galileo's Parabola Observed from Pappus' Directrix, Apollonius' Pedal Curve (Line), Galileo's Empty Focus, Newton's Evolute, Leibniz's Subtangent and Subnormal, Ptolemy's Circle (Hodograph), and Dürer-Simon Parabola", 2019.
  • "Super-Elastic Double-Helix Model of Photon. Huygens-de Broglie Particle on the Helical Path Guided by the Newton-Bohm Entangled Helical Evolute", Applied Physics Research, Vol. 11, 2019.
  • "How to Understand the Planck's Oscillators? Wien Peaks, Planck Distribution Function and Its Decomposition, the Bohm Sheath Criterion, Plasma Coupling Constant, the Barrier of Determinacy, Hubble Cooling Constant", Applied Physics Research, Vol. 12, No. 4, 2020.
  • "The Rydberg Constant Interpreted as the Gaussian Curvature, Gauss-Bohr-de Broglie Model – Two Shadow Projections of the Helix, Unlocking of the Fixed Constant c of the Speed of Light – New Tests for Old Physics", 2021.
  • "Entanglement Interpreted as the Cooperation Between the Super-Elastic Double-Helix Photons and the Super-Elastic Double-Helix Gravitons. Quantum Cavendish Experiment", Applied Physics Research, Vol. 13, No. 1, 2021.

External links