{"id":11190,"date":"2013-04-01T06:05:08","date_gmt":"2013-04-01T10:05:08","guid":{"rendered":"http:\/\/www.theimagineershome.com\/blog\/?p=11190"},"modified":"2018-12-15T08:49:52","modified_gmt":"2018-12-15T12:49:52","slug":"the-geometry-of-quantum-mechanics-2","status":"publish","type":"post","link":"https:\/\/www.theimagineershome.com\/blog\/the-geometry-of-quantum-mechanics-2\/","title":{"rendered":"The Geometry of Quantum Mechanics"},"content":{"rendered":"<p><font face=\"Arial\" size=\"3\">Is it possible to define the physical &#8220;reality&#8221; of a Quantum field?<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">We think so.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Many including Albert Einstein and Erin Schr\u00c3\u00b6dinger, had difficulty accepting the &#8220;reality&#8221; of quantum mechanics because many of its concepts appear to contradict those of our observable universe.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">For example in a quantum system Schr\u00c3\u00b6dinger&#8217;s wave equation defines the field properties of its environment and predicts the future distribution of a particle&#8217;s position only in terms of the abstract properties of probabilities. <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">However many including Einstein and Schr\u00c3\u00b6dinger define reality in terms of what they see or touch.<\/font><br \/>\n<font face=\"Arial\" size=\"3\">For example, Einstein used the observable &#8220;reality&#8221; of the interactions of electromagnetic energy with a photoelectric material to derive the quantum mechanical properties of energy\/mass while using the observable properties of light in our three-dimensional environment to define his space-time universe.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">In other words his conclusion that electromagnetic energy is quantized was based on the physical &#8220;reality&#8221; of the environment surrounding the photoelectric material and how electromagnetic energy interacted with it, not on the abstract probabilities associated with quantum fields.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">However the abstract properties of probabilities share a common characteristic with Einstein space-time universe in that time or a space-time dimension have never be seen or touched and therefore they like the probability functions of quantum field theory are, by definition abstract quantities. <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Fortunately they also have a common element in, as mentioned earlier the physically observable non-abstract properties of the *spatial* dimensions because the probabilities associated with Schr\u00c3\u00b6dinger&#8217;s wave equation are expressed in terms of the spatial properties of position.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Einstein gave us the ability to do this when used the equation E=mc^2 and the velocity of light to define the geometric properties of space-time because it allows one to convert a unit of displacement he associated with energy in a four dimensional space-time universe to an equivalent unit of spatial displacement in four *spatial* dimensions.&nbsp; Additionally because the velocity of light is constant it is possible to defined a one to one correspondence between his space-time universe and one made up of four *spatial* dimensions.<\/font><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">In other words because he defined the geometric relationship between energy, mass, space and time in terms of the constant velocity of light means that one can quantitatively and qualitatively define a one to one between the properties of energy in a space-time universe to the physical properties of space four *spatial* dimensions.<\/font><\/span><\/p>\n<p><font face=\"Arial\" size=\"3\">The fact that one can use the Einstein&#8217;s equations to <i>qualitatively<\/i> and <i>qualitatively<\/i> derive the spatial properties of energy in a space-time universe in terms of four *spatial* dimensions is one bases for assuming, as was done in the article \u00e2\u20ac\u0153<\/font><a title=\"Permalink to : Defining potential and kinetic energy?\" href=\"https:\/\/www.theimagineershome.com\/blog\/?p=30\" rel=\"bookmark\"><font color=\"#0080ff\" face=\"Arial\" size=\"3\">Defining energy?<\/font><\/a><font face=\"Arial\" size=\"3\">\u00e2\u20ac\u009d Nov 27, 2007 that all forms of energy can be derived in terms of a spatial displacement in a &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension.&nbsp; <\/font><\/p>\n<p><span style=\"font-size: medium; font-family: arial\">One of the theoretical advantages of a modeling the existence of energy\/mass on four *spatial* dimensions instead of four dimension space-time is <\/span><font face=\"Arial\" size=\"3\">it allows one to derive the &#8220;reality&#8221; of a quantum fields in terms of the observable non-abstract properties of our three-dimensional environment.<\/font><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">The physical &#8220;reality&#8221; of the field properties energy\/mass in four *spatial* dimension was developed in the article \u00e2\u20ac\u0153<\/font><\/span><a title=\"Permalink to : Electromagnetism in four *spatial* dimensions\" href=\"https:\/\/www.theimagineershome.com\/blog\/?p=14\" rel=\"bookmark\"><font color=\"#0080ff\" face=\"Arial\" size=\"3\">Electromagnetism in four *spatial* dimensions<\/font><\/a><font face=\"Arial\" size=\"3\">\u00e2\u20ac\u009d Sept 27, 2007 where it was shown the forces associated with an electromagnetic field can be explained and predicted in terms of matter wave on field consisting of four *spatial* dimensions.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Briefly it showed that one can derive its field properties by extrapolating the observable non-abstract properties of a three-dimensional environment to a fourth *spatial* dimension.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">For example a wave on the two-dimensional surface of water causes a point on that surface to be become displaced or rise above or below the equilibrium point that existed before the wave was present.&nbsp; A force will be developed by the differential displacement of the surfaces, which will result in the elevated and depressed portions of the water moving towards or become &#8220;attracted&#8221; to each other and the surface of the water.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Similarly a matter wave on the &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension would cause a point on that &#8220;surface&#8221; to become displaced or rise above and below the equilibrium point that existed before the wave was present.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Therefore observations&nbsp; of our three dimensional &#8220;reality&#8221;, if extrapolated&nbsp; to four *spatial* dimensions tells us the force developed by the differential displacements caused by a matter wave moving on a &#8220;surface&#8221; of three-dimensional space with respect to a fourth *spatial* dimension will result in its elevated and depressed portions moving towards or become &#8220;attracted&#8221; to each other. <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">This defines the causality of the attractive forces of unlike charges associated with the electromagnetic wave component of a photon in terms of a force developed by a differential displacement of a point on a &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension. <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">However, it also provides a non-abstract mechanism for understanding why similar charges repel each other because observations of wave on the surface of water tell us that there is a direct relationship between the magnitudes of a displacement in its surface to the magnitude of the force resisting that displacement. <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">Similarly the magnitude of a displacement in a &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension caused by two similar charges will be greater than that caused by a single one.&nbsp; Therefore, similar charges will repel each other because the magnitude of the force resisting the displacement will be greater for two charges than it would be for a single charge. <\/font><\/p>\n<p align=\"left\"><font face=\"Arial\" size=\"3\">One can define the causality of electrical component of electromagnetic radiation in terms of the energy associated with its &#8220;peaks&#8221; and &#8220;troughs&#8221; that is directed perpendicular to its velocity vector while its magnetic component would be associated with the horizontal force developed by that perpendicular displacement. <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">However, observations of our three dimensional environment tell us a horizontal force will be developed by that perpendicular or vertical displacement which will always be 90 degrees out of phase with it.&nbsp; This force is called magnetism.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">This is analogous to how the vertical force pushing up of on mountain also generates a horizontal force, which pulls matter horizontally towards the apex of that displacement.<\/font><\/p>\n<p><font face=\"Arial\" size=\"3\">This shows how one can explain and predict the continuous field properties of electromagnetism by extrapolating the observable non-abstract properties of our three dimensional environment to a matter wave moving on a &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension.<\/font><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">However, as was shown in the article \u00e2\u20ac\u0153<\/font><\/span><a title=\"Permalink to : The Photon: a matter wave?\" href=\"https:\/\/www.theimagineershome.com\/blog\/?p=16\" rel=\"bookmark\"><font color=\"#0080ff\" face=\"Arial\" size=\"3\">The Photon: a matter wave?<\/font><\/a><font face=\"Arial\" size=\"3\">\u00e2\u20ac\u009d Oct. 1, 2007 the quantum field properties of four *spatial* dimension can also be derived by extrapolating the observable non-abstract resonant properties of a three-dimensional environment to one consisting of four *spatial* dimension.<\/font><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">There are four conditions required for resonance to occur in a three-dimensional environment an object or substance with a natural frequency, a forcing function at the same frequency as the natural frequency, the lack of a damping frequency and the ability for the substance to oscillate spatial.<\/font><\/span><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">The existence of four *spatial* dimensions would give the continuous surface or field of three-dimensional space manifold (the substance) the ability to oscillate spatially with respect to a fourth *spatial* dimension thereby fulfilling one of the requirements for classical resonance to occur. <\/font><\/span><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">These oscillations would be caused by an event such as the decay of a subatomic particle or the shifting of an electron in an atomic orbital.&nbsp; This would force the &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension to oscillate with the frequency associated with the energy of that event.<\/font><\/span><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">Therefore, these oscillations in four *spatial* dimensions, would meet the requirements mentioned above for the formation of a resonant system or &#8220;structure&#8221; in space.&nbsp; <\/font><\/span><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">Observations of a three-dimensional environment show the energy associated with resonant system can only take on the incremental or discreet values associated with a fundamental or a harmonic of the fundamental frequency of its environment. <\/font><\/span><\/p>\n<p><span style=\"font-family: arial\"><font size=\"3\">Similarly the energy associated with resonant systems in four *spatial* dimensions could only take on the incremental or discreet values associated a fundamental or a harmonic of the fundamental frequency of its environment. <\/font><\/span><\/p>\n<p><font size=\"3\"><span style=\"font-family: arial\">These resonant systems in four *spatial* dimensions are responsible for the incremental or discreet field energies associated <\/span><font face=\"Arial\">quantum and electromagnetic field theories<\/font><\/font><\/p>\n<p><i><font face=\"Arial\" size=\"3\">This shows how one can define the &#8220;reality&#8221; of the continuous field associated with Schr\u00c3\u00b6dinger&#8217;s wave equation and a physical mechanism responsible for the creation of particles in that field in terms of the observable non-abstract &#8220;reality&#8221; of our three-dimensional environment.<\/font><\/i><\/p>\n<p><font face=\"Arial\" size=\"3\">Latter Jeff <\/font><\/p>\n<p><font face=\"Arial\" size=\"3\"><font size=\"1\">Copyright 2013 Jeffrey O&#8217;Callaghan<\/font> <\/font><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Is it possible to define the physical &#8220;reality&#8221; of a Quantum field? We think so. Many including Albert Einstein and Erin Schr\u00c3\u00b6dinger, had difficulty accepting the &#8220;reality&#8221; of quantum mechanics because many of its concepts appear to contradict those of our observable universe. For example in a quantum system Schr\u00c3\u00b6dinger&#8217;s wave equation defines the field &#8230; <a title=\"The Geometry of Quantum Mechanics\" class=\"read-more\" href=\"https:\/\/www.theimagineershome.com\/blog\/the-geometry-of-quantum-mechanics-2\/\" aria-label=\"Read more about The Geometry of Quantum Mechanics\">Read more<\/a><\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"sfsi_plus_gutenberg_text_before_share":"","sfsi_plus_gutenberg_show_text_before_share":"","sfsi_plus_gutenberg_icon_type":"","sfsi_plus_gutenberg_icon_alignemt":"","sfsi_plus_gutenburg_max_per_row":"","footnotes":""},"categories":[],"tags":[757,270,319,758,301,360,756,362,601,760,759,320],"class_list":["post-11190","post","type-post","status-publish","format-standard","hentry","tag-bohr","tag-emc2","tag-einstein","tag-einsteins-vision","tag-four-spatial-dimensions","tag-heisenbergs-uncertainty-principle","tag-michio-kaku","tag-plancks-constant","tag-plancks-length","tag-position-and-momentum","tag-quantum-theory","tag-space-time"],"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v27.6.1 (Yoast SEO v27.6) - https:\/\/yoast.com\/product\/yoast-seo-premium-wordpress\/ -->\n<title>The Geometry of Quantum Mechanics | Unifying Quantum and Relativistic Theories<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/www.theimagineershome.com\/blog\/the-geometry-of-quantum-mechanics-2\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"The Geometry of Quantum Mechanics\" \/>\n<meta property=\"og:description\" content=\"Is it possible to define the physical &#8220;reality&#8221; of a Quantum field? 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