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		<title>The relevance of classical mechanics to a quantum environment.</title>
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		<pubDate>Mon, 01 Aug 2016 12:24:57 +0000</pubDate>
				<category><![CDATA[2. Theoretical]]></category>
		<category><![CDATA[8. Quantum Mechanics]]></category>
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		<guid isPermaLink="false">http://www.theimagineershome.com/blog/?p=14186</guid>

					<description><![CDATA[<p>Presently there is disconnect between our understanding of the probabilistic world of quantum mechanics and the classical one of causality because it can predict with precision the future position of an object while the other cannot. However this may just be an illusion resulting from a lack of understanding of the quantum environment. One of ... <a title="The relevance of classical mechanics to a quantum environment." class="read-more" href="https://www.theimagineershome.com/blog/the-relevance-of-classical-mechanics-to-a-quantum-environment/" aria-label="Read more about The relevance of classical mechanics to a quantum environment.">Read more</a></p>
<p>The post <a href="https://www.theimagineershome.com/blog/the-relevance-of-classical-mechanics-to-a-quantum-environment/">The relevance of classical mechanics to a quantum environment.</a> appeared first on <a href="https://www.theimagineershome.com/blog">Unifying Quantum and Relativistic Theories</a>.</p>
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										<content:encoded><![CDATA[<p><span style="font-family: arial;"><font size="3">Presently there is disconnect between our understanding of the probabilistic world of quantum mechanics and the classical one of causality because it can predict with precision the future position of an object while the other cannot. </font></span></p>
<p><span style="font-family: arial;"><font size="3">However this may just be an illusion resulting from a lack of understanding of the quantum environment.</font></span></p>
<p><span style="font-family: arial;"><font size="3">One of the fundament areas where this disconnect appears is in the probabilistic interpretation SchrÃ¶dinger wave equation </font></span></p>
<p><span style="font-family: arial;"><font size="3">However one could eliminate this disconnect if one could explain the causality of those probabilities in terms of a physical image based on the laws of classical physics similar to how we explain the causality of the movement of the planets around the sun in terms of a physical image of a curvature in space-time.</font></span></p>
<p><span style="font-family: arial;"><font size="3">Granted this will not change the fact that one cannot use quantum mechanics to make precise predictions of future events but it would give us a physical reason why we cannot in terms of our classical understanding of causality. </font></span></p>
<p dir="ltr"><span style="font-family: arial;"><font size="3">One way of accomplishing this would be look at the physically observable properties of all quantum systems and determine if by applying the laws of causality in a classical environment one can explain the reason for the probabilities associated with SchrÃ¶dinger&#8217;s equation.</font></span></p>
<p><span style="font-family: arial;"><font size="3">For example in 1924 Louis de Broglie theorized that all quantum objects are physically composed of a wave as was verified by 1927 by Davisson and Germer) when he observed electrons diffracted by crystals.</font></span></p>
<p><span style="font-family: arial;"><font size="3">However, the fact that no one has been able to physically connect the causality of those observable properties to the probabilities of all quantum systems does not change the fact that there must be one because if there wasn&#8217;t they could not interact with our environment to create the physically observable properties of the world upon which those probabilities are determined. </font></span><br />
<span style="font-family: arial;"><font size="3">One reason for this failure may be due to the fact that those probability are related to the spatial not time dependent properties of the wave function.</font></span></p>
<p><font face="Arial" size="3">If so one may be able to establish the connection by looking at it in terms of its spatial properties instead of the space-time ones associated with Einstein&#8217;s theories.</font></p>
<p><font face="Arial" size="3">Einstein gave us the ability to do this when defined the geometric properties of space-time in terms of the constant velocity of light because that provided a method of converting a unit of time in a space-time environment of unit of space in four *spatial* dimensions. Additionally because the velocity of light is constant he also defined a one to one quantitative and qualitative correspondence between his space-time universe and one made up of four *spatial* dimensions.</font></p>
<p><font face="Arial" size="3">The fact that one can use Einsteinâ€<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" />s equations to qualitatively and quantitatively redefine the curvature in space-time he associated with energy in terms of four *spatial* dimensions is one bases for assuming as was done in the article â€œ</font><a href="https://www.theimagineershome.com/blog/?p=30"><span style="color: rgb(0, 128, 255); font-family: arial;"><font size="3">Defining energy?</font></span></a><span style="font-family: arial;"><font size="3">â€ 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.</font></span></p>
<p><font face="Arial" size="3">However doing so would have allowed Louis de Broglie to physically define the casualty of the quantum properties associated with SchrÃ¶dinger equation in terms of a physical or spatial displacement in a &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension as was done in the article &#8220;</font><a href="https://www.theimagineershome.com/blog/?p=17"><span style="color: rgb(0, 128, 255); font-family: arial;"><font size="3">Why is energy/mass quantized?</font></span></a><span style="font-family: arial;"><font size="3">&#8221; Oct. 4, 2007.</font></span></p>
<p><font face="Arial" size="3">Briefly, that article showed the quantized properties of energy/mass are the result of a resonant system formed by a matter &#8220;wave&#8221; on a &#8220;surface&#8221; of a three-dimensional space manifold with respect to fourth &#8220;spatial&#8221; dimension. This is because it showed the 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 would occur in one made up of four.</font></p>
<p><font face="Arial" size="3">The existence of four *spatial* dimensions would give a matter wave the ability to oscillate spatially on a &#8220;surface&#8221; between a third and fourth *spatial* dimension thereby fulfilling one of the requirements for classical resonance to occur.</font></p>
<p><font face="Arial" 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. 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></p>
<p><font face="Arial" size="3">However, the oscillations caused by such an event would serve as forcing function allowing a resonant system or &#8220;structure&#8221; to be established on a surface of a three-dimensional space manifold.</font></p>
<p><font face="Arial" size="3">Yet the classical laws of three-dimensional space tell us the energy of resonant systems can only take on the discontinuous or discreet energies associated with their fundamental or harmonic of their fundamental frequency.</font></p>
<p><font color="#ffff00" face="Arial" size="3">Additionally it also tells us why in terms of the physical properties four dimensional space-time or four *spatial* dimensions an electron cannot fall into the nucleus is because, as was shown in that article all energy is contained in four dimensional resonant systems. In other words the energy released by an electron &#8220;falling&#8221; into it would have to manifest itself in terms of a resonate system. Since the fundamental or lowest frequency available for a stable resonate system in either four dimensional space-time or four spatial dimension corresponds to the energy of an electron it becomes one of the fundamental energy units of the universe.</font></p>
<p><font face="Arial" size="3">However, these are the similar to the quantum mechanical properties of energy/mass in that they can only take on the discontinuous or discreet energies associated with the formula E=hv where &#8220;E&#8221; equals the energy of a particle &#8220;h&#8221; equal Planck&#8217;s constant &#8220;v&#8221; equals the frequency of its wave component.</font></p>
<p><font face="Arial" size="3">In other words Louis de Broglie would have been able to physicality connect the properties of his particle waves to the quantum mechanical properties of SchrÃ¶dinger equation in terms of the discrete incremental energies associated with a resonant system in four *spatial* dimensions if he had assume space was composed of it instead of four dimensional space-time.</font></p>
<p><font face="Arial" size="3">Yet it also would have allowed him to define the physical boundaries of a quantum system in terms of the geometric properties of four *spatial* dimensions.</font></p>
<p><font face="Arial" size="3">For example in classical physics, a point on the two-dimensional surface of a piece of paper is confined to that surface. However, that surface can oscillate up or down with respect to three-dimensional space.</font></p>
<p><font face="Arial" size="3">Similarly an object occupying a volume of three-dimensional space would be confined to it however, it could, similar to the surface of the paper oscillate â€œupâ€ or â€œdownâ€ with respect to a fourth *spatial* dimension.</font></p>
<p><font face="Arial" size="3">The confinement of the â€œupwardâ€ and â€œdownwardâ€ oscillations of a three-dimension volume with respect to a fourth *spatial* dimension is what defines the spatial boundaries associated with a particle in the article &#8220;</font><a href="https://www.theimagineershome.com/blog/?p=17"><span style="color: rgb(0, 128, 255); font-family: arial;"><font size="3">Why is energy/mass quantized?</font></span></a><span style="font-family: arial;"><font size="3">&#8221; Oct. 4, 2007.</font></span></p>
<p><font face="Arial" size="3">As mentioned earlier in the article â€œ</font><a href="https://www.theimagineershome.com/blog/?p=30"><span style="color: rgb(0, 128, 255); font-family: arial;"><font size="3">Defining energy?</font></span></a><span style="font-family: arial;"><font size="3">â€ Nov 27, 2007 showed 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.</font></span></p>
<p><font face="Arial" size="3">However assuming the energy associated with Louis de Broglie particle wave is result of a displacement in four *spatial* dimension instead of four dimensional space-time as was done earlier would allow one to define a classical causality for quantum probabilities in terms the observable environment we inhabit.</font></p>
<p><font face="Arial" size="3">Classical mechanics tell us that due to the continuous properties of waves the energy the article &#8220;</font><a href="https://www.theimagineershome.com/blog/?p=17"><span style="color: rgb(0, 128, 255); font-family: arial;"><font size="3">Why is energy/mass quantized?</font></span></a><span style="font-family: arial;"><font size="3">&#8221; Oct. 4, 2007 associated with a quantum system would be distributed throughout the entire &#8220;surface&#8221; a three-dimensional space manifold with respect to a fourth *spatial* dimension.</font></span></p>
<p><font face="Arial" size="3">For example Classical mechanics tells us the energy of a vibrating or oscillating ball on a rubber diaphragm would be disturbed over its entire surface while the magnitude of those vibrations would decrease as one move away from the focal point of the oscillations.</font></p>
<p><font face="Arial" size="3">Similarly if the assumption that quantum properties of energy/mass are a result of vibrations or oscillations in a &#8220;surface&#8221; of three-dimensional space is correct then classical mechanics tell us that those oscillations would be distributed over the entire &#8220;surface&#8221; three-dimensional space while the magnitude of those vibrations would be greatest at the focal point of the oscillations and decreases as one moves away from it.</font></p>
<p><font face="Arial" size="3">As mentioned earlier the article â€œ</font><a href="https://www.theimagineershome.com/blog/?p=17"><span style="color: rgb(0, 128, 255); font-family: arial;"><font size="3">Why is energy/mass quantized?</font></span></a><span style="font-family: arial;"><font size="3">â€ shown a quantum particle is a result of a resonant structure formed on the &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension.</font></span></p>
<p><font face="Arial" size="3">Yet Classical Wave Mechanics tells us resonance would most probably occur on the surface of the rubber sheet were the magnitude of the vibrations is greatest and would diminish as one move away from that point,</font></p>
<p><font face="Arial" size="3">Similarly a particle would most probably be found were the magnitude of the vibrations in a &#8220;surface&#8221; of a three-dimensional space manifold is greatest and would diminish as one move away from that point.</font></p>
<p dir="ltr"><span style="font-family: arial;"><font size="3">This shows that one can define the causality of the probabilities associated SchrÃ¶dinger wave equation in terms of the laws of causality associated with our observable environment by redefining them in terms of four *spatial* dimensions.</font></span></p>
<p dir="ltr"><span style="font-family: arial;"><font size="3">In other words one can eliminate the disconnect between the probabilities associated his equation and a classical environment by defining their causality in terms of the laws of classical physics.</font></span></p>
<p><font face="Arial" size="3">It should be remember Einsteinâ€<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" />s genius allows us to choose to define a quantum system in either a space-time environment or one consisting of four *spatial* dimension when he defined the geometry of space-time in terms of the constant velocity of light. This interchangeability broadens the environment encompassed by his theories thereby giving us a new perspective on the probabilistic properties of a quantum environment and how they physically connected to our observable universe.</font></p>
<p dir="ltr"><span style="font-family: arial;"><font size="3">Later Jeff</font></span></p>
<p dir="ltr"><span style="font-family: arial; font-size: xx-small;"><font size="1">Copyright Jeffrey O&#8217;Callaghan 2016</font></span></p>
<p>The post <a href="https://www.theimagineershome.com/blog/the-relevance-of-classical-mechanics-to-a-quantum-environment/">The relevance of classical mechanics to a quantum environment.</a> appeared first on <a href="https://www.theimagineershome.com/blog">Unifying Quantum and Relativistic Theories</a>.</p>
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		<title>The physical meaning of Schr&#246;dinger wave equation</title>
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		<dc:creator><![CDATA[jeffocal]]></dc:creator>
		<pubDate>Sat, 01 Aug 2015 09:52:42 +0000</pubDate>
				<category><![CDATA[1. Predictions]]></category>
		<category><![CDATA[2. Theoretical]]></category>
		<category><![CDATA[3. Relativity]]></category>
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		<guid isPermaLink="false">http://www.theimagineershome.com/blog/?p=13547</guid>

					<description><![CDATA[<p>Quantum mechanics defines our observable environment only in terms of the probabilistic values associated with SchrÃ¶dingerâ€™s wave equation. However it is extremely difficult to define a set of statements which explains how those probabilities are physically connected to it even though it has held up to rigorous and thorough experimental testing. This may be the ... <a title="The physical meaning of Schr&#246;dinger wave equation" class="read-more" href="https://www.theimagineershome.com/blog/the-physical-significance-of-schrdinger-wave-equation/" aria-label="Read more about The physical meaning of Schr&#246;dinger wave equation">Read more</a></p>
<p>The post <a href="https://www.theimagineershome.com/blog/the-physical-significance-of-schrdinger-wave-equation/">The physical meaning of Schr&ouml;dinger wave equation</a> appeared first on <a href="https://www.theimagineershome.com/blog">Unifying Quantum and Relativistic Theories</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p><span style="font-size: medium"><span style="font-family: arial">Quantum mechanics </span><span style="font-family: arial">defines our observable environment only in terms of the probabilistic values associated with SchrÃ¶dingerâ€<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" />s wave equation.</span></span></p>
<p><span style="font-size: medium; font-family: arial">However it is extremely difficult to define a set of statements which explains how those probabilities are physically connected to it even though it has held up to rigorous and thorough experimental testing.</span></p>
<p><span style="font-size: medium; font-family: arial">This may be the reason most physicists consider quantum mechanics only in terms of its mathematical formalization instead trying to understand the meaning of it in terms of the space-time environment we occupy.&nbsp; </span><br />
<span style="font-size: medium; font-family: arial">F</span><span style="font-size: medium; font-family: arial">or example in 1924 Louis de Broglie was the first to realize all particles are physically composed of a matter wave as the discovery of electron diffraction by crystals in 1927 by Davisson and Germer) verified.&nbsp; However in his paper, <em>â€œ<span style="color: #0080ff">Theory of the double solution</span>â€œ</em> he unsuccessfully attempted to define a physical interpretation of </span><span style="font-family: arial"><span style="font-size: medium">SchrÃ¶dinger<span style="font-size: medium; font-family: arial"> equation in classical terms of space and time. </span></span></span></p>
<p><span style="font-size: medium; font-family: arial">As is pointed at his biography on the <a href="http://www.nobelprize.org/nobel_prizes/physics/laureates/1929/broglie-bio.html"><span style="color: #0080ff">nobleprize.org</span></a> web site in &#8220;1951, he together with some of his younger colleagues made another attempt, one which he abandoned in the face of the almost universal adherence of physicists to the purely probabilistic mathematical interpretation of, Bohr, and Heisenberg.&#8221;</span></p>
<p><span style="font-size: medium; font-family: arial; font-weight: bold; font-style: italic">However the fact that no has been able to physically connect those probabilities to our environment does not change the fact that there must be one because if there wasn&#8217;t they could not interact with it to create the physicality of observable world upon which those probabilities are based.</span></p>
<p><span style="font-size: medium; font-family: arial">As mentioned earlier </span><span style="font-size: medium; font-family: arial">Louis de Broglie and his </span><span style="font-size: medium; font-family: arial">colleagues tried unsuccessfully to find a </span><span style="font-size: medium; font-family: arial">physical interpretation of </span><span style="font-family: arial"><span style="font-size: medium">SchrÃ¶dinger<span style="font-size: medium; font-family: arial"> equation in classical terms of space and time.</span></span></span></p>
<p><span style="font-size: medium; font-family: arial">However the reason for their failure may be due to the fact that it is related to the spatial not time dependent properties of the wave function.</span></p>
<p><span style="font-size: medium; font-family: arial">If so one may be able to establish the connection by looking at it in terms of its spatial properties instead of the space-time one </span><span style="font-size: medium; font-family: arial">Louis de Broglie and his </span><span style="font-size: medium; font-family: arial">colleagues used.</span></p>
<p><span style="font-size: medium; font-family: arial"><i>Einstein gave us the ability to do this defined the geometric properties of space-time in terms of the constant velocity of light and a dynamic balance between mass and energy because that&nbsp; provided a method of converting a unit of time in a space-time environment of unit of space in four *spatial* dimensions.&nbsp; Additionally because the velocity of light is constant he also defined a one to one quantitative and qualitative correspondence between his space-time universe and one made up of four *spatial* dimensions.</i></span></p>
<p><span style="font-size: medium; font-family: arial">The fact that one can use Einsteinâ€<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" />s equations to qualitatively and quantitatively redefine the curvature in space-time he associated with energy in terms of four *spatial* dimensions is one bases for assuming as was done in the article â€œ</span><a href="https://www.theimagineershome.com/blog/?p=30"><span style="font-size: medium; font-family: arial; color: #0080ff">Defining energy?</span></a><span style="font-size: medium; font-family: arial">â€ 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.</span></p>
<p><span style="font-size: medium; font-family: arial">This</span><span style="font-size: medium; font-family: arial"> would have allowed Louis de Broglie to </span><span style="font-size: medium; font-family: arial">physically connect the probabilities associated</span><span style="font-size: medium; font-family: arial"> SchrÃ¶dinger equation</span> <span style="font-size: medium; font-family: arial"><i>to the quantum properties of a matter wave in terms of a physical or spatial displacement in a &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension</i> <span style="font-size: medium; font-family: arial">as was done in the article&nbsp; &#8220;</span></span><a title="Permalink to : Why is mass and energy quantized?" href="https://www.theimagineershome.com/blog/?p=17" rel="bookmark"><span style="font-size: medium; font-family: arial; color: #0080ff">Why is energy/mass quantized?</span></a><span style="font-size: medium; font-family: arial">&#8221; Oct. 4, 2007.</span>&nbsp;</p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">Briefly that article showed that one can do this </span><span style="font-size: medium; font-family: arial">by assuming they are caused by the formation of </span><span style="font-size: medium; font-family: arial">a resonant system on a &#8220;surface&#8221; of a three-dimensional space manifold with respect to fourth &#8220;spatial&#8221; dimension.&nbsp; This is because </span><span style="font-size: medium; font-family: arial">it showed the 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 would occur in one made up of four.</span></p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">The existence of four *spatial* dimensions would give a matter wave the ability to oscillate spatially on a &#8220;surface&#8221; between a third and fourth *spatial* dimension thereby fulfilling one of the requirements for classical resonance to occur.</span></p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">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.</span></p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">However, the oscillations caused by such an event would serve as forcing function allowing a resonant system or &#8220;structure&#8221; to be established on a surface of a three-dimensional space manifold.</span></p>
<p><span style="font-size: medium; font-family: arial">Yet the classical laws of three-dimensional space tell us the energy of resonant systems can only take on the discontinuous or discreet energies associated with their fundamental or harmonic of their fundamental frequency. </span></p>
<p><font color="#ffff00" face="Arial" size="3">Additionally it also tells us why in terms of the physical properties four dimensional space-time or four *spatial* dimensions an electron cannot fall into the nucleus is because, as was shown in that article all energy is contained in four dimensional resonant systems. In other words the energy released by an electron &#8220;falling&#8221; into it would have to manifest itself in terms of a resonate system. Since the fundamental or lowest frequency available for a stable resonate system in either four dimensional space-time or four spatial dimension corresponds to the energy of an electron it becomes one of the fundamental energy units of the universe.</font></p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">However, these are the similar to the quantum mechanical properties of energy/mass in that they can only take on the discontinuous or discreet energies associated with the formula E=hv where &#8220;E&#8221; equals the energy of a particle &#8220;h&#8221; equal Planck&#8217;s constant &#8220;v&#8221; equals the frequency of its wave component.</span></p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">In other words Louis de Broglie would have been able to physicality connect the the quantum mechanical properties of his particle waves to </span><span style="font-family: arial"><span style="font-size: medium">SchrÃ¶dinger<span style="font-size: medium; font-family: arial"> equation </span><span style="font-size: medium; font-family: arial">in terms of the discrete incremental energies associated with a resonant system in four *spatial* dimensions if he had assume space was composed of it instead of four dimensional space-time.</span></span></span></p>
<p><span style="font-family: arial"><span style="font-size: medium"><span style="font-size: medium; font-family: arial"></span></span></span><span style="font-size: medium; font-family: arial">Yet it also would have allowed him to define the physical boundaries of a quantum system in terms of the geometric properties of four *spatial* dimensions. </span></p>
<p align="left"><span style="font-size: medium; font-family: arial">For example in classical physics, a point on the two-dimensional surface of a piece of paper is confined to that surface.&nbsp; However, that surface can oscillate up or down with respect to three-dimensional space.&nbsp; </span></p>
<p align="left"><span style="font-size: medium; font-family: arial">Similarly an object occupying a volume of three-dimensional space would be confined to it however, it could, similar to the surface of the paper oscillate â€œupâ€ or â€œdownâ€ with respect to a fourth *spatial* dimension. </span></p>
<p align="left"><span style="font-size: medium; font-family: arial">The confinement of the â€œupwardâ€ and â€œdownwardâ€ oscillations of a three-dimension volume with respect to a fourth *spatial* dimension is what defines the spatial boundaries associated with a particle in the article </span><span style="font-size: medium; font-family: arial">&#8220;</span><a title="Permalink to : Why is mass and energy quantized?" href="https://www.theimagineershome.com/blog/?p=17" rel="bookmark"><span style="font-size: medium; font-family: arial; color: #0080ff">Why is energy/mass quantized?</span></a><span style="font-size: medium; font-family: arial">&#8221; Oct. 4, 2007</span></p>
<p><font face="Arial"><font size="3">As mentioned earlier in the article â€œ</font></font><a href="https://www.theimagineershome.com/blog/?p=30"><span style="font-size: medium; font-family: arial; color: rgb(0,128,255)">Defining energy?</span></a><span style="font-size: medium; font-family: arial">â€ Nov 27, 2007 showed 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.</span></p>
<p><span style="font-size: medium; font-family: arial"></span><i><span style="font-size: medium; font-family: arial">However assuming </span></i><span style="font-size: medium; font-family: arial">the energy associated with Louis de </span><font face="Arial"><font size="3">Broglie particle wave <i><span style="font-size: medium; font-family: arial">is result of a displacement in four *spatial* dimension instead of four dimensional space-time as was done earlier would allows one to connect the probabilities associated with </span></i>SchrÃ¶dinger equation<i><span style="font-size: medium; font-family: arial"> to the physicality of our observable environment we all live in. </span></i></font></font></p>
<p><span style="font-size: medium; font-family: arial">Classical mechanics tell us that due to the continuous properties of waves the energy the article &#8220;</span><a title="Permalink to : Why is mass and energy quantized?" href="https://www.theimagineershome.com/blog/?p=17" rel="bookmark"><span style="font-size: medium; font-family: arial; color: #0080ff">Why is energy/mass quantized?</span></a><span style="font-size: medium; font-family: arial">&#8221; Oct. 4, 2007</span><span style="font-size: medium; font-family: arial"> associated with a quantum system would be distributed throughout the entire &#8220;surface&#8221; a three-dimensional space manifold with respect to a fourth *spatial* dimension. </span></p>
<p><span style="font-size: medium; font-family: arial">For example Classical mechanics tells us that the energy of a vibrating or oscillating ball on a rubber diaphragm would be disturbed over its entire surface while the magnitude of those vibrations would decease as one move away from the focal point of the oscillations.&nbsp; </span></p>
<p><span style="font-size: medium; font-family: arial">Similarly if the assumption that quantum properties of energy/mass are a result of vibrations or oscillations in a &#8220;surface&#8221; of three-dimensional space is correct then classical mechanics tell us that those oscillations would be distributed over the entire &#8220;surface&#8221; three-dimensional space while the magnitude of those vibrations would be greatest at the focal point of the oscillations and decreases as one moves away from it.</span></p>
<p><span style="font-size: medium; font-family: arial">As mentioned earlier the article â€œ</span><a title="Permalink to : Why is energy/mass quantized?" href="https://www.theimagineershome.com/blog/?p=17" rel="bookmark"><span style="font-size: medium; font-family: arial; color: rgb(0,128,255)">Why is energy/mass quantized?</span></a><span style="font-size: medium; font-family: arial">â€ shown a quantum particle is a result of a resonant structure formed on the &#8220;surface&#8221; of a three-dimensional space manifold with respect to a fourth *spatial* dimension. </span></p>
<p><span style="font-size: medium; font-family: arial">Yet Classical Wave Mechanics tells us resonance would most probably occur on the surface of the rubber sheet were the magnitude of the vibrations is greatest and would diminish as one move away from that point, </span></p>
<p><span style="font-size: medium; font-family: arial">Similarly a particle would most probably be found were the magnitude of the vibrations in a &#8220;surface&#8221; of a three-dimensional space manifold is greatest and would diminish as one move away from that point. </span></p>
<p><span style="font-size: medium; font-family: arial">This shows how one can physically connect the probabilities associated </span><font face="Arial" size="3">SchrÃ¶dinger wave equation to our observable environment by redefining it in terms of four *spatial* dimensions.</font></p>
<p><font face="Arial" size="3">It should be remember Einsteinâ€<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" />s genius allows us to choose to define a quantum system in either a space-time environment or one consisting of four *spatial* dimension when he defined the geometry of space-time in terms of the constant velocity of light. This interchangeability broadens the environment encompassed by his theories thereby giving us a new perspective on the probabilistic properties of a quantum environment and how they physically connected to our observable universe</font>.</p>
<p><span style="font-size: medium; font-family: arial"></span><span style="font-size: medium; font-family: arial">Later Jeff</span></p>
<p><span style="font-family: arial"><font size="1">Copyright Jeffrey O&#8217;Callaghan 2015</font></span></p>
<p>The post <a href="https://www.theimagineershome.com/blog/the-physical-significance-of-schrdinger-wave-equation/">The physical meaning of Schr&ouml;dinger wave equation</a> appeared first on <a href="https://www.theimagineershome.com/blog">Unifying Quantum and Relativistic Theories</a>.</p>
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