KELEA (Kinetic Energy Limiting Electrostatic Attraction) Offers an Alternative Explanation to Existing Concepts Regarding Wave-Particle Duality, Cold Fusion and Superconductivity — Oak Academic Publishing
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KELEA (Kinetic Energy Limiting Electrostatic Attraction) Offers an Alternative Explanation to Existing Concepts Regarding Wave-Particle Duality, Cold Fusion and Superconductivity
Institute of Progressive Medicine, South Pasadena, USA
1 Institute of Progressive Medicine, South Pasadena, USA
Existing explanations for several major phenomena in physics may need to be reconsidered in light of the description of a natural force termed KELEA (kinetic energy limiting electrostatic attraction). Three examples are selected for discussion in this paper: i) The proposed wave-particle duality of electrons; ii) cold fusion; and iii) superconductivity. The current interpretations of these enigmatic concepts are incomplete and not fully validated by scientific methods. The observations underlying these processes are seemingly consistent with KELEA acting as a repelling force between opposite electrical charges. Relatively simple experiments can be designed to either confirm or exclude KELEA in these and in various other currently perplexing physical phenomena.
KeywordsKELEAKinetic Energy Limiting Electrostatic AttractionLENRLow Energy Nuclear ReactionWave-Particle DualityDouble Slit ExperimentCold FusionDeuteriumPalladiumSuperconductivityCondensed Matter Nuclear ScienceBrown’s GasElectrolysisActivated Water
Martin, W.J. (2014) Stealth Adapted Viruses; Alternative Cellular Energy (ACE) & KELEA Activated Water. Author House, Bloomington, IN, p. 321.
Martin, W.J. (2015) International Journal of Complementary & Alternative Medicine, 1, 00001. http://dx.doi.org/10.15406/ijcam.2015.01.00001
Martin, W.J. (2015) International Journal of Complementary & Alternative Medicine, 2, 00051. http://dx.doi.org/10.15406/ijcam.2015.02.00051
Martin, W.J. (2016) Journal of Transportation Technologies, 6, 148-154. http://dx.doi.org/10.4236/jtts.2016.63014
Martin, W.J. (2015) Open Journal of Biophysics, 5, 69-79. http://dx.doi.org/10.4236/ojbiphy.2015.53006
Martin, W.J. (2015) Open Journal of Energy Efficiency, 4, 36-43. http://dx.doi.org/10.4236/ojee.2015.42004
Martin, W.J. (2016) Journal of Modern Physics, 7, 461-472. http://dx.doi.org/10.4236/jmp.2016.76048
Martin, W.J. (2016) Atmospheric and Climate Sciences, 6, 174-179. http://dx.doi.org/10.4236/acs.2016.62015
Selleri, F. (2012) Wave Particle Duality. Springer, Berlin, p. 206.
Feynman, R., Leighton, R.B. and Sands, M.L. (1965) The Feynman Lectures on Physics: Quantum Mechanics. Vol. 3, Chapter 1, Addison-Wesley, Reading, MA.
Frabboni, S., Gabrielli, A., Gazzadi, G.C., Giorgi, F., Matteucci, G., Pozzi, G., Cesari, N.S., Villa, M. and Zoccoli, A. (2012) Ultramicroscopy, 116, 73-76. http://dx.doi.org/10.1016/j.ultramic.2012.03.017
Bach, R., Pope, D., Liou, S.-H. and Batelaan, H. (2013) New Journal of Physics, 15, Article ID: 033018. http://dx.doi.org/10.1088/1367-2630/15/3/033018
Bohm, D. (1952) Physical Review, 85, 180-193. http://dx.doi.org/10.1103/PhysRev.85.180
Mahler, D.H., Rozema, L., Fisher, K., Vermeyden, L., Resch, K.J., Wiseman, H.M. and Steinberg, A. (2016) Science Advances, 2, e1501466. http://dx.doi.org/10.1126/science.1501466
Martin, W.J. (2015) Open Journal of Biophysics, 5, 115-121. http://dx.doi.org/10.4236/ojbiphy.2015.54010
Martin, W.J. (2015) International Journal of Complementary & Alternative Medicine, 1, Article ID: 00034. http://dx.doi.org/10.15406/ijcam.2015.01.00034
Zeilinger, A., Gähler, R., Shull, C.G., Treimer, W. and Mampe, W. (1988) Reviews of Modern Physics, 60, 1067-1073. http://dx.doi.org/10.1103/RevModPhys.60.1067
Carnal, O. and Mlynek, J. (1991) Physical Review Letters, 66, 2689-2692. http://dx.doi.org/10.1103/PhysRevLett.66.2689
Arndt, M., Nairz, O., Vos-Andreae, J., Keller, C., van der Zouw, G. and Zeilinger, A. (1999) Nature, 401, 680-682. http://dx.doi.org/10.1038/44348
Eibenberger, S., Gerlich, S., Arndt, M., Mayor, M. and Tüxen, J. (2013) Physical Chemistry Chemical Physics, 15, 14696-14700. http://dx.doi.org/10.1039/c3cp51500a
Gerlich, S., Eibenberger, S., Tomandl, M., Nimmrichter, S., Hornberger, K., Fagan, P.J., Tüxen, J., Mayor, M. and Arndt, M. (2011) Nature Communications, 2, Article No. 263. http://dx.doi.org/10.1038/ncomms1263
Gudder, S.P. (1984) Wave-Particle Duality in a Quark Model. In: Diner, S., Fargue, D., Lochak, G. and Selleri, F., Eds., The Wave-Particle Dualism, Reidel Publishing Company, Boston, 499-514. http://dx.doi.org/10.1007/978-94-009-6286-6_28
Fleischmann, M. and Pons, S. (1989) Journal of Electroanalytical Chemistry, 261, 301-308 and errata in 263, 187-188.
Fleischmann, M., Pons, S., Anderson, M.W., Li, L.J. and Hawkins, M. (1990) Journal of Electroanalytical Chemistry and Interfacial Electrochemistry, 287, 293-348. http://dx.doi.org/10.1016/0022-0728(90)80009-U
Pons, S. and Fleischmann, M. (1990) Fusion Science and Technology, 17, 669-679.
Olsson, P. and Aasen,A. (2009) Nuclear Reactors, Nuclear Fusion and Fusion Engineering. Nova Science Publishers, New York, 484.
Peat, F.D. (1989) Cold Fusion: The Making of a Scientific Controversy. Contemporary Books, Chicago, 188.
Iwamura, Y., Itoh, T., Gotoh, N. and Toyoda, I. (1998) Fusion Science and Technology, 33, 476-492.
Liaw, B.Y., Tao, P.-L., Turner, P. and Liebert, B.E. (1991) Journal of Electroanalytical Chemistry and Interfacial Electrochemistry, 319, 161-175. http://dx.doi.org/10.1016/0022-0728(91)87075-F
Storms, E.K. (1993) Fusion Science and Technology, 23, 230-245.
Jung, P. (1991) Diffusion and Clustering of Helium in Noble Metals. In: Donnelly, S.E. and Evans, J.H., Eds., Fundamental Aspects of Inert Gases in Solids, Plenum Press, New York, 59-66. http://dx.doi.org/10.1007/978-1-4899-3680-6_5
Zhang, Q.F., Gou, Q.Q. and Zhu, H. (1995) Chinese Journal of Atomic and Molecular Physics, 12, 165-169.
Rossi, A. (2015) Energy-Producing Reaction Devices, Systems and Related Methods. United States Patent Application Number 20160051957.
Notoya, R. (1993) Fusion Science and Technology, 24, 202-204.
Ohmori, T., Enyo, M., Mizuno, T., Nodasaka. Y. and Minagawa, H. (1997) Fusion Science and Technology, 31, 210-218.
Sendis, A. (2011) Desktop Fusion of D2 in Palladium Nano-Particles Loaded in Zeolites. Senior Thesis Chemistry Department, University of La Verne May 25, 2011. Cited in Biberian, J.-P. and Parachamazad, Miles, M.H. (2014) The Journal of Condensed Matter Nuclear Science, 13, 38-43.
Pons, S. and Fleischmann, M. (1994) Transactions of Fusion Technology, 26, 87-93.
Rhodes, W. and Henes, R.A. (1962) Apparatus for the Electrolytic Production of Hydrogen and Oxygen for the Safe Combustion Thereof. United States Patent Number 3262872 Issued 26 July 1966.
Brown, Y. (1974) Welding. US Patent Number 4,014,777 Issued on 29 March 1977.
Brown, Y. (1976) Arc-Assisted Oxy/Hydrogen Welding. US Patent Number 4,081,656 Issued on 28 March 1978.
Hurtak, J.J. and Hurtak, D. (2014) The History and Future of Brown’s Gas. Nexus Magazine, June-July 2014, 49-54.
Wiseman, G. (2009) Brown’s Gas Book 2. Published by Eagle Research, Oroville, WA, 59.
Martin, W.J. (2011) Methods for Increasing the Kinetic Activity of Alcohol, Water and Other Liquids, So as to Render the Liquids More Useful in Enhancing the Alternative Cellular Energy Pathway in the Prevention and Therapy of Diseases. United States Patent Application Number 20120207850.
Kang, S.D. (2007) Use of Brown’s Gas and Feeding Apparatus of the Brown’s Gas. United States Patent Application Number 20070104797.
Bagotsky, V.S. (2005) Fundamentals of Electrochemistry. 2nd Edition, John Wiley & Sons, Hoboken, 640. http://dx.doi.org/10.1002/047174199X
Silver, N. (2001) The Handbook of Rife Frequency Healing: Holistic Technology for Cancer and Other Diseases. The Center for Frequency Education, CA, 430.
Lakhovsky, G. (1996) The Secret of Life. Cosmic Rays and Radiations of Living Beings (Translated by Clement, M.). Health Research, Pomeroy, WA, 213.
Pappas, P.T. and Wallach, C. (1993) Effects of Pulsed Magnetic Field Oscillations in Cancer Therapy. International Association for New Science, Fort Collins, CO.
Reich, W. (1948) The Cancer Biopathy. The Discovery of the Orgone. Vol. 2 (Translated by White, A., Higgins, M. and Raphael, C.M. (1973)), Farrar, Straus and Giroux, New York, 433.
Reich, W. (1953) The Einstein Affair. Orgone Institute Press, Ashland, OR.
Correa, P.N. and Correa, A.N. (2010) Journal of Aetherometric Research, 2, 1-24.
Ohmori, T., Mizuno, T., Minagawa, H. and Enyo, M. (1997) International Journal of Hydrogen Energy, 22, 459-463. http://dx.doi.org/10.1016/S0360-3199(96)00126-7
Ohmori, T., Mizuno, T., Nodasaka, Y. and Enyo, M. (1998) Fusion Science and Technology, 33, 367-382.
Brillson, L.J. (2016) An Essential Guide to Electronic Material Surfaces and Interfaces. John Wiley & Sons, Hoboken,320. http://dx.doi.org/10.1002/9781119027140
Martin, W.J. (2003) Experimental and Molecular Pathology, 74, 210-223. http://dx.doi.org/10.1016/S0014-4800(03)00037-6
Haley, D. (1993) Planetary Association for Clean Energy. Newsletter, 6, 8-9.
Harris, R. (1999) Nonclassical Physics. Beyond Newton’s View. Addison-Wesley, Menlo Park, 608.
Goldstein, T.P. (1967) Superconducting Molecular Sieves. United States Patent 3509071A.
Engler, E.M., Lee, Y.Y., Nazzal, A.I., Beyers, R.B., Lim, G., Grant, P.M., et al. (1987) Journal of the American Chemical Society, 109, 2848-2849. http://dx.doi.org/10.1021/ja00243a061
Hirsch, J.E., Maple, M.B. and Marsiglio, F. (2015) Physica C: Superconductivity and Its Applications, 514, 1-8. http://dx.doi.org/10.1016/j.physc.2015.03.002
Bozović, I., He, X., Wu, J. and Bollinger, A.T. (2016) Nature, 536, 309-311. http://dx.doi.org/10.1038/nature19061
Van Tendeloo, G., Antipov, E.V. and Putilin, S.N., Eds. (1999) High-Temperature Superconductors and Novel Inorganic Materials. In: Nato Science Partnership Subseries 3: Vol. 63, Springer, New York, 307.
Takabayashi, Y. and Prassides, K. (2016) Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 374, Article ID: 20150320. http://dx.doi.org/10.1098/rsta.2015.0320
Kubozono, Y., Goto, H., Jabuchi, T., Yokoya, T., Kambe, T., Sakai, Y., et al. (2015) Physica C: Superconductivity and Its Applications, 514, 199-205. http://dx.doi.org/10.1016/j.physc.2015.02.015
Solymar, L., Walsh, D. and Syms,R.R.A. (2014) Electrical Properties of Materials. Oxford University Press, Oxford, 484.