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Anomalous Thermodynamic Properties of Water and Water Molecules
<!doctype html> <html lang="en"> <head> <meta charset="utf-8"> <meta name="viewport" content="width=device-width, initial-scale=1, shrink-to-fit=no"> <title>Anomalous Thermodynamic Properties of Water and Water Molecules</title> <meta name="keywords" content="Liquid water; Anomalous thermodynamic properties; Water molecules; Intermolecular interactions"> <meta name="description" content="For water at atmospheric pressure, in the temperature range from 0°C to 100°C, the specific heat at a constant pressure shows a constant value of a.. "/> <meta name="citation_publisher" content="Longdom Publishing S.L"/> <meta name="citation_journal_title" content="Journal of Theoretical & Computational Science"> <meta name="citation_title" content="Anomalous Thermodynamic Properties of Water and Water Molecules"> <meta name="citation_author" content="Mokoto Yasutomi"/> <meta name="citation_year" content="2024"> <meta name="citation_volume" content="10"> <meta name="citation_issue" content="2"> <meta name="citation_doi" content="10.35248/2376-130X.24.10.217"> <meta name="citation_issn" content="2376-130X"> <meta name="citation_publication_date" content="2024/06/25"/> <meta name="citation_firstpage" content="1"> <meta name="citation_lastpage" content="7"> <meta name="citation_abstract" content="For water at atmospheric pressure, in the temperature range from 0°C to 100°C, the specific heat at a constant pressure shows a constant value of approximately 4.2 J/(gK), the density reaches its maximum at 3.98°C and the isothermal compressibility reaches its minimum at approximately 46°C. However, the mechanisms underlying these anomalous thermodynamic phenomena in water remain unclear. However, the thermodynamic mechanism that causes negative thermal expansion of water has recently been elucidated by the present author in relation to the functional shape of the interactions between water molecules. In this study, we further elucidate the mechanisms underlying the changes in the specific heat at constant pressure and isothermal compressibility with temperature by relating these changes to the functional shapes of intermolecular interactions. We also showed that the anomalous thermal behavior of water is produced by the anomalous thermodynamic properties of the interactions between water molecules. The same can be inferred for the ice. The experimental verification of these issues is strongly desired."> <meta name="citation_fulltext_html_url" content="https://www.longdom.org/open-access/anomalous-thermodynamic-properties-of-water-and-water-molecules-108497.html"> <meta name="citation_pdf_url" content="https://www.longdom.org/open-access/anomalous-thermodynamic-properties-of-water-and-water-molecules.pdf"> <meta name="citation_abstract_html_url" content="https://www.longdom.org/abstract/anomalous-thermodynamic-properties-of-water-and-water-molecules-108497.html"> <meta name="format-detection" content="telephone=no" /> <meta name="google-site-verification" content="NomPTP94YozsgvD3NEFpNqUfY88e0TU0L64zNzZTpd0" /> <meta itemprop="name" content="longdom" /> <meta http-equiv="X-UA-Compatible" content="IE=edge" /> <meta name="ROBOTS" content="INDEX,FOLLOW" /> <meta name="googlebot" content="INDEX,FOLLOW" /> <meta name="viewport" content="width=device-width, initial-scale=1, shrink-to-fit=no" /> <link rel="canonical" 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align-items-center justify-content-between"> <div class="col-12 col-sm-4"> <p class="text-muted mb-0"> Research Article - (2024)Volume 10, Issue 2 </p> </div> <div class="col-12 col-sm-8 text-right custom-column"> <a href="https://www.longdom.org/open-access/anomalous-thermodynamic-properties-of-water-and-water-molecules.pdf" title="View PDF" class="btn btn-sm bg-green-600 rounded-50"><i class="fas fa-file-pdf"></i> View PDF</a> <a href="https://www.longdom.org/pdfdownload.php?download=open-access/anomalous-thermodynamic-properties-of-water-and-water-molecules.pdf&aid=108497" title="Download PDF" class="btn btn-sm bg-green-600 rounded-50"><i class="fas fa-download"></i> Download PDF</a> </div> </div> <h2 class="font-size-7 mt-2">Anomalous Thermodynamic Properties of Water and Water Molecules</h2> <a href='https://www.longdom.org/author/makoto-yasutomi-69916' title='Makoto Yasutomi' style='color:#555; border-bottom:1px dotted #CCC;'>Makoto Yasutomi</a><sup><a href='#Makoto_Yasutomi'>*</a></sup> <div> </div> <a id="Makoto_Yasutomi"></a> <strong><sup>*</sup>Correspondence:</strong> Makoto Yasutomi, Department of Physics and Earth Sciences, University of the Ryukyus, Nishihara-Cho, Okinawa, Japan, <strong>Email:</strong> <i class='fa fa-envelope' aria-hidden='true' title='g800002@lab.u-ryukyu.ac.jp'></i> <p><a href="#ai"><strong>Author info »</strong></a></p> <div class="card bg-light mb-3"> <div class="card-body px-3 pb-0"> <h2 class="font-size-5">Abstract</h2> <p>For water at atmospheric pressure, in the temperature range from 0°C to 100°C, the specific heat at a constant pressure shows a constant value of approximately 4.2 J/(gK), the density reaches its maximum at 3.98°C and the isothermal compressibility reaches its minimum at approximately 46°C. However, the mechanisms underlying these anomalous thermodynamic phenomena in water remain unclear. However, the thermodynamic mechanism that causes negative thermal expansion of water has recently been elucidated by the present author in relation to the functional shape of the interactions between water molecules. In this study, we further elucidate the mechanisms underlying the changes in the specific heat at constant pressure and isothermal compressibility with temperature by relating these changes to the functional shapes of intermolecular interactions. We also showed that the anomalous thermal behavior of water is produced by the anomalous thermodynamic properties of the interactions between water molecules. The same can be inferred for the ice. The experimental verification of these issues is strongly desired.</p> <h4 class="font-size-4">Keywords</h4> <p>Liquid water; Anomalous thermodynamic properties; Water molecules; Intermolecular interactions</p> </div> </div> <h4>Introduction</h4> <p>When the Pressure (P) is 1 atm and the Temperature (T) is 3.98°C or higher, water expands when heated and contracts when cooled (positive thermal expansion). However, at temperatures below 3.98°C, water contracts when heated and expands when cooled (negative thermal expansion). The measured values of the change in the water density (mρ) with temperature are shown as black circles in <strong>Figure 1</strong>. Here, m represents the mass of one water molecule and ρ represents the number of water molecules per unit volume (<strong>Figure 1</strong>).</p> <a onclick="openimage('https://www.longdom.org/articles-images-2024/Computational-Science-atmospheric-10-2-217-g001.png','','scrollbars=yes,resizable=yes,width=500,height=330')" class="thumbnail"> <img src="https://www.longdom.org/articles-images-2024/Computational-Science-atmospheric-10-2-217-g001.png" class="img-thumbnail img-fluid d-block mx-auto" alt="atmospheric" title="atmospheric" /></a> <p><strong>Figure 1:</strong> Isobars of water at atmospheric pressure.</p> <p>The black circles indicate the experimental results [<a href="#1" title="1">1</a>]. The red circles represent the theoretical isobars obtained in this study. The solid black line represents measured value of mρ. The blue, red and black dashed lines represent isobars obtained by fixing the functional shape of the intermolecular interactions shown by the solid blue, red and black lines respectively.</p> <p>The isothermal compressibility k is defined in Equation (1)</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e001.png" alt="Equation" /></p> <p>Where v denotes the volume of the system under consideration. The temperature dependence of k is shown in <strong>Figure 2</strong>, k reaches its minimum at approximately 46°C (<strong>Figure 2</strong>).</p> <a onclick="openimage('https://www.longdom.org/articles-images-2024/Computational-Science-temperature-10-2-217-g002.png','','scrollbars=yes,resizable=yes,width=500,height=330')" class="thumbnail"> <img src="https://www.longdom.org/articles-images-2024/Computational-Science-temperature-10-2-217-g002.png" class="img-thumbnail img-fluid d-block mx-auto" alt="temperature" title="temperature" /></a> <p><strong>Figure 2:</strong> Change in k with temperature at atmospheric pressure. <strong>Note:</strong> k: Isothermal compressibility.</p> <p>The black circles represent the experimental results [<a href="#2" title="2">2</a>]. The red circles indicate the theoretical results of this study.</p> <p>Furthermore, the measured value of the isobaric specific heat c<sub>p</sub> of water nearly remains constant at 4.2 J/(gK) in the temperature range 0<T (°C)<100.</p> <p>Thermodynamic physical parameters, such as water density, isothermal compressibility and specific heat at constant pressure, exhibit unexplained changes with temperature. For centuries, numerous scientists have conducted research to elucidate the mechanisms by which such unusual phenomena occur and various theories have been proposed [<a href="#3" title="3">3</a>-<a href="#18" title="18">18</a>]. Although none of these theories have solved these issues, Yasutomi [<a href="#19" title="19">19</a>-<a href="#22" title="22">22</a>], recently solved the mystery of the unusual change in density with temperature by relating this change to the functional shape of the interactions between the water molecules. In this study, we identify intermolecular interactions that can reproduce the measured results of changes in specific heat at constant pressure and isothermal compressibility, in addition to density and temperature and explain the unusual thermal behavior of water. We show that these changes are caused by unusual thermodynamic properties of the molecule.</p> <p>Unraveling the mystery of related phenomena in relation to the shape of the interactions between molecules has been a traditional and fundamental method in physics since Newton’s time.</p> <p><strong>Isobaric specific heat capacity and excess internal energy</strong></p> <p>The measured value of mρ shown in <strong>Figure 1</strong> can be reproduced using the following Equation (2)</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e002.png" alt="Equation" /></p> <p>Here, the unit of T is degrees Celsius. In addition, (c<sub>0</sub>,c<sub>1</sub>-c<sub>7</sub>)=(0.99984, 6.7403 × 10<sup>-5</sup>, -9.0917 × 10<sup>-6</sup>, 1.1429 × 10<sup>-7</sup>, -2.1114 × 10<sup>-9</sup>, 3.1712 × 10<sup>-11</sup>, -2.6661 × 10<sup>-13</sup>, 8.9058 × 10<sup>-16</sup>).</p> <p>The thermal expansion coefficient α<sub>p</sub> is defined in Equation (3)</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e003.png" alt="Equation" /></p> <p>The results obtained by substituting Equation (2) into Equation (3) are shown in <strong>Figure 3</strong>.</p> <a onclick="openimage('https://www.longdom.org/articles-images-2024/Computational-Science-expansion-2-217-g003.png','','scrollbars=yes,resizable=yes,width=500,height=330')" class="thumbnail"> <img src="https://www.longdom.org/articles-images-2024/Computational-Science-expansion-2-217-g003.png" class="img-thumbnail img-fluid d-block mx-auto" alt="expansion" title="expansion" /></a> <p><strong>Figure 3:</strong> Change in α<sub>p</sub> with temperature at atmospheric pressure. <strong>Note:</strong> α<sub>p</sub>: Thermal expansion coefficient.</p> <p>The black circles indicate the experimental results [<a href="#1" title="1">1</a>]. The solid line represents Equation (3). The potential energy u per unit volume of the system is called the excess internal energy and is expressed in Equation (4).</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e004.png" alt="Equation" /></p> <p>Here, U is the total potential energy of the system, g(r) is the two-body distribution function of the water molecules and ϕ(r) is the intermolecular interaction. The isobaric specific heat capacity c<sub>p</sub> of water is expressed in Equation (5)</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e005.png" alt="Equation" /></p> <p>Where, k is Boltzmann’s constant. To calculate α<sub>p</sub> in Equation (5), we use Equations (2) and (3), which are justified by the identification of the intermolecular interactions that can reproduce Equation (2) with high accuracy.</p> <p>If we set c<sub>p</sub>=4.2 J/(gK) and substitute Equation (3) into Equation (5), we obtain a first-order differential equation for u(T) with respect to T. If we solve this equation numerically, we obtain the u(T) indicated by the solid line. There are an infinite number of such u(T) curves because they contain an integration constant. However, we adopt u(0°C)=-2096.66 J/cm³. Therefore, we reproduce c<sub>p</sub>(T)=4.2 J/(gK) and the u-T relationship shown by the solid line in <strong>Figure 4</strong>.</p> <a onclick="openimage('https://www.longdom.org/articles-images-2024/Computational-Science-internal-2-217-g004.png','','scrollbars=yes,resizable=yes,width=500,height=330')" class="thumbnail"> <img src="https://www.longdom.org/articles-images-2024/Computational-Science-internal-2-217-g004.png" class="img-thumbnail img-fluid d-block mx-auto" alt="internal" title="internal" /></a> <p><strong>Figure 4:</strong> Change in the excess internal energy u(T) of water with temperature at atmospheric pressure.</p> <p>In this study, we aimed to identify the interactions between the water molecules that reproduce the solid line in <strong>Figure 4</strong> and the experimental results shown in <strong>Figures 1 and 2</strong>. Furthermore, we clarified the relationship between the functional shapes of the interactions and these thermodynamic phenomena. Therefore, a suitable water model must be developed. <h4>Materials and Methods</h4> <p><strong>Water model</strong></p> <p>Various thermodynamic physical quantities can be derived from the thermodynamic potential u defined in Equation (4). Because the relationship between u and ϕ(r) is clear compared to other thermodynamic potentials, our method is convenient for this type of research. ‘u’ can be obtained by numerically solving the following equation using the Self-Consistent Ornstein-Zernike Approximation (SCOZA) in Equation (6) [<a href="#23" title="23">23</a>-<a href="#29" title="29">29</a>].</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e006.png" alt="Equation" /></p> <p>The red circles indicate the theoretical results of this study.</p> <p>Here, β=1/kT and X<sub>red </sub>is the reduced isothermal compressibility defined by the following Equation (7)</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e007.png" alt="Equation" /></p> <p>The intermolecular interaction ϕ(r) of water in thermal equilibrium comprises three parts: the hard-core potential, soft-repulsive tail and attractive tail and is expressed in Equation (8).</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e008.png" alt="Equation" /></p> <p>Here, a<sub>2</sub> is normalization constant with a potential depth of 1 and a<sub>3</sub>/a<sub>2</sub>, Z<sub>2</sub> and Z<sub>3</sub> are the free parameters. In addition, the hard core diameter (σ) is a unit of length and the potential depth (ε) is a unit of energy. <h4>Results</h4> <p><strong>Calculation method</strong></p> <p>If the thermal equilibrium state of water changes, then the structure, coordination and orientation of the water molecules and the shape of the electron wave function around each water molecule will change accordingly. Therefore, the functional shape of the interaction between water molecules constantly changes as the thermal equilibrium state changes. In this study, we considered these effects in our calculations.</p> <p>In SCOZA, we performed calculations using water vapour in thermal equilibrium at atmospheric pressure and infinite temperature as the initial conditions and then gradually lowered the temperature.</p> <p>Thermal equilibrium has been thermodynamically proven independent of the path through which it is achieved. Therefore, calculations can be performed using the functional form of fixed intermolecular interactions. At a certain temperature, if the experimental and theoretical values of the density and isothermal compressibility agree and if the theoretical value of the excess internal energy matches the u shown in <strong>Figure 4</strong> by the solid line, then this intermolecular interaction can be considered to be the interaction between water molecules in a state of thermal equilibrium at that temperature.</p> <p><strong>Calculation results in the range of 0<T (°C)<100</strong></p> <p>The physical quantities that are reproduced are the changes in three quantities with temperature, density, isobaric heat capacity and isothermal compressibility. However, the measured values of the specific heat at constant pressure were only obtained for the temperature range 0<T (°C)<100; therefore, we discuss the thermodynamic phenomena within this temperature range.</p> <p>The interaction between water molecules defined by Equation (8) includes four parameters (a<sub>2</sub>, a<sub>3</sub> and Z<sub>2</sub>, Z<sub>3</sub>). However, because a<sub>2</sub> is normalization constant, the interaction is specified by a combination of the three remaining free parameters (a<sub>3</sub>/a<sub>2</sub> and Z<sub>2</sub>, Z<sub>3</sub>) ∞³ combinations exist. We identified three sets of combinations that reproduced the experimental results. There were three temperature values, expressed in degrees Celsius: T<sub>1</sub>=84.69, T<sub>2</sub>=58.05 and T<sub>3</sub>=7.25.</p> <p>Z<sub>2</sub> and Z<sub>3</sub> with respect to temperature are listed in <strong>Table 1</strong>. The values of a<sub>2</sub>, a<sub>3</sub>/a<sub>2</sub>, σ and ε are listed in <strong>Table 2</strong>. The tails of the intermolecular interactions with respect to the temperature T<sub>j</sub> (j=1-3) are shown in <strong>Figure 5</strong>.</p> <div class="table-responsive"> <table class="table table-striped"> <thead> <tr> <th>T</th> <th>T<sub>1</sub></th> <th>T<sub>2</sub></th> <th>T<sub>3</sub></th> </tr> </thead> <tbody> <tr> <td>Z<sub>2</sub></td> <td>39 </td> <td>49 </td> <td>99.9 </td> </tr> <tr> <td>Z<sub>3</sub></td> <td>40 </td> <td>49.1 </td> <td>110</td> </tr> </tbody> </table> </div> <div class="alert alert-warning" role="alert"> <p><strong>Note:</strong> Z<sub>2</sub> and Z<sub>3</sub> are free parameters.</p> </div> <p><strong>Table 1:</strong> Values of Z<sub>2</sub> and Z<sub>3</sub> with respect to Temperature (T).</p> <div class="table-responsive"> <table class="table table-striped"> <thead> <tr> <th>T</th> <th>a<sub>2</sub> (ε) </th> <th>a<sub>3</sub>/a<sub>2</sub></th> <th>σ (A) </th> <th>ε (10<sup>-20</sup> J) </th> </tr> </thead> <tbody> <tr> <td>T<sub>1</sub></td> <td>126.399 </td> <td>-1.00347 </td> <td>3.081952 </td> <td>2.19461 </td> </tr> <tr> <td>T<sub>2</sub></td> <td>1612.13 </td> <td>-1.00034 </td> <td>3.09656 </td> <td>2.39083 </td> </tr> <tr> <td>T<sub>3</sub></td> <td>37.092 </td> <td>-1.02672</td> <td>3.06838 </td> <td>3.20971</td> </tr> </tbody> </table> </div> <div class="alert alert-warning" role="alert"> <p><strong>Note:</strong> a<sub>2</sub>: Normalisation constant; a<sub>3</sub>/a<sub>2</sub>: Free parameter; (σ): Units of length; (ε): Units of energy.</p> </div> <p><strong>Table 2:</strong> Values of a<sub>2</sub>, a<sub>3</sub>/a<sub>2</sub>, (σ) and (ε) with respect to Temperature (T).</p> <a onclick="openimage('https://www.longdom.org/articles-images-2024/Computational-Science-interaction-2-217-g005.png','','scrollbars=yes,resizable=yes,width=500,height=330')" class="thumbnail"> <img src="https://www.longdom.org/articles-images-2024/Computational-Science-interaction-2-217-g005.png" class="img-thumbnail img-fluid d-block mx-auto" alt="interaction" title="interaction" /></a> <p><strong>Figure 5:</strong> Temperature dependence of the tails of water interaction ϕ(r). <strong>Note:</strong> ϕ(r): Intermolecular interaction.</p> <p>The tails of the three intermolecular interactions are indicated by blue, red and black lines in <strong>Figure 5</strong>. The isobars obtained by fixing the shapes of these functions are shown as blue, red and black dashed lines in <strong>Figure 1</strong>. The dashed lines indicate the maximum density. For the isobars, if we implement the condition that the theoretical and experimental maximum densities match at 1 atm and 3.98°C, then the values of the length-unit (σ) and the energy-unit (ε) are obtained from the following Equations (9-11) [<a href="#23" title="23">23</a>].</p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e009.png" alt="Equation" /></p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e010.png" alt="Equation" /></p> <p><img class="img-responsive" src="https://www.longdom.org/articles-images-2024/Computational-Science-10-2-217-e011.png" alt="Equation" /></p> <p>Where ρ<sub>md</sub> is the theoretical value of the maximum density, T<sub>md</sub> is the theoretical value of the temperature at the density and P<sub>md</sub> is the theoretical value of the pressure at ρ=ρ<sub>md</sub> and T=T<sub>md</sub>. The values of ρ<sub>m</sub><sub>d</sub>, T<sub>md</sub> and P<sub>md</sub> obtained from the three dashed isobars in <strong>Figure 1</strong> are listed in <strong>Table 3</strong>.</p> <div class="table-responsive"> <table class="table table-striped"> <thead> <tr> <th> </th> <th>Blue line </th> <th>Red line </th> <th>Black line </th> </tr> </thead> <tbody> <tr> <td>P<sub>md </sub>(10<sup>-5</sup>) </td> <td>13.53 </td> <td>12.61 </td> <td>9.138 </td> </tr> <tr> <td>ρ<sub>md</sub></td> <td>0.9794 </td> <td>0.9934 </td> <td>0.9665 </td> </tr> <tr> <td>kT<sub>md</sub></td> <td>0.1743 </td> <td>0.16 </td> <td>0.1192 </td> </tr> </tbody> </table> </div> <div class="alert alert-warning" role="alert"> <p><strong>Note:</strong> ρ<sub>md</sub>: Theoretical value of maximum density; T<sub>md</sub>: Theoretical value of the temperature at the density; P<sub>md</sub>: Theoretical value of the pressure; k: Isothermal compressibility.</p> </div> <p><strong>Table 3:</strong> Values of P<sub>md</sub>, ρ<sub>md</sub> and T<sub>md</sub> with respect to the theoretical isobars.</p> <p>The theoretical isobar, shown as the blue dashed line in <strong>Figure 1</strong> coincides with the experimental isobar, shown as a solid line, at the points of maximum density. The blue dashed line deviates from the solid line as the temperature increases, but it intersects the experimental isobar again at the red circle point T=T<sub>1</sub> shown at the right end of the figure. The same is true for the isobars indicated by the red and black lines, which intersect the experimental isobar at the red circle points T=T<sub>2</sub> and T=T<sub>3</sub>, respectively. Therefore, the experimental and theoretical values of temperature and density determined by fixing the three intermolecular interactions relative to atmospheric pressure agree with high accuracy.</p> <p>The excess internal energies obtained from these three interactions are indicated by red circles in <strong>Figure 4</strong>. As shown in the <strong>Figure 4</strong> these models reproduce the excess internal energy indicated by the solid line with high accuracy. The process for reproducing the u(T) shown by this solid line is the same as that for reproducing the isobaric specific heat capacity of c<sub>p</sub>=4.2 J/ (gK). However, when calculating α<sub>p</sub>, ρ is assumed to change along the isobar indicated by the solid line in <strong>Figure 1</strong> because the real water changes along the isobar shown as the solid line and not along the isobars shown as broken lines.</p> <p>In addition, the isothermal compressibility k obtained for the three interactions mentioned above is indicated by red circles in <strong>Figure 2</strong>. The isothermal compressibility’s k (T<sub>1</sub>) and k (T<sub>3</sub>) obtained from the tails indicated by the blue and black dashed lines in <strong>Figure 5</strong> reproduced the experimental values with high accuracy. However, k (T<sub>2</sub>) obtained from the tail indicated by the red broken line does not agree well with the experimental value, although we believe that it is within the allowable range.</p> <p><strong>Figure 6</strong> shows the radial distribution functions g(r) of the water molecules for each thermal equilibrium state at temperatures T<sub>1</sub>-T<sub>3</sub>.</p> <a onclick="openimage('https://www.longdom.org/articles-images-2024/Computational-Science-radial-2-217-g006.png','','scrollbars=yes,resizable=yes,width=500,height=330')" class="thumbnail"> <img src="https://www.longdom.org/articles-images-2024/Computational-Science-radial-2-217-g006.png" class="img-thumbnail img-fluid d-block mx-auto" alt="radial" title="radial" /></a> <p><strong>Figure 6:</strong> Temperature dependence of water’s radial distribution function g(r).</p> <p>As the temperature decreased, the principal maximum of g(r) increased and the position r decreased monotonically, which is likely a reflection of the fact that in this temperature range, the density increases monotonically with decreasing temperature due to positive thermal expansion. Similarly, below 4°C, it is inferred that the principal maximum of g(r) decreased and the position r increased monotonically as the temperature is cooled because of the negative thermal expansion. From this temperature dependence of g(r), it is easy to understand the temperature dependence of the density, but it is difficult to elucidate the relationship between the isobaric specific heat and the thermal behaviour of isothermal compressibility. The author believes that the temperature dependence of intermolecular interactions is more important in unravelling the mysteries of the thermodynamic behaviour of water.</p> <p>The results shown in <strong>Figure 6</strong> do not seem to have very good reproducibility when compared to the actual measurements. However, considering the current general precision of liquid physics, we believe that our results are acceptable. <h4>Discussion</h4> <p>Water exhibits mysterious thermodynamic properties. Numerous scientists have attempted to unravel this mystery and various theories have been proposed.</p> <p>However, none of these theories have resolved this issue. Recently, the author of this paper solved the mystery of negative thermal expansion exhibited by water by relating this phenomenon to the functional shape of intermolecular interactions. Furthermore, in this study, we identified intermolecular interactions for three temperatures (T<sub>1</sub>, T<sub>2</sub> and T<sub>3</sub>)=(84.69, 58.05 and 7.25) that can reproduce the experimental results of changes in three thermodynamic quantities with temperature in the temperature range of 0<T (°C)<100, specific heat at constant pressure, isothermal compressibility and density. These three intermolecular interactions are shown in <strong>Figure 5</strong>.</p> <p>In addition, the excess internal energy u(T) is indicated by red circles in <strong>Figure 4</strong>. These red circles reproduce the u-T relationship shown by the solid black line with high accuracy. The energy u(T) indicated by the solid black line is the excess internal energy, which yields c<sub>p</sub>=4.2 (J/gK). However, there are countless other u(T) curves owing to their integration constant. The solid line in <strong>Figure 4</strong> is an example. In addition, because of this indeterminacy, the functional shape of the intermolecular interactions shown in <strong>Figure 5</strong> is not unique at a given temperature and numerous other shapes may exist. Therefore, in the future, we must devise a method to eliminate this uncertainty.</p> <p>The change in density with temperature is indicated by the red circles in <strong>Figure 1</strong> and the experimental values were reproduced with high accuracy. This justifies the use of Equation (2) when calculating α<sub>p</sub>.</p> <p>The change in isothermal compressibility with temperature is indicated by the red circles in <strong>Figure 2</strong>. The experimental values of k for 84.69°C and 7.25°C are accurately reproduced. However, although the reproducibility of k at 58.05°C cannot be considered highly accurate, we believe that it is within the acceptable range. <h4>Conclusion</h4> <p>Currently, the amount of theoretical data is insufficient; therefore, we need to increase the amount of theoretical data to reproduce experimental values with high accuracy. However, the anomalous thermodynamic behavior of water is caused by complex changes in the interactions between the water molecules as the temperature changes. The same can be inferred from the thermodynamic properties of the ice. The experimental verification of these issues is strongly desired. Furthermore, interesting changes in the density and isothermal compressibility with temperature were experimentally obtained at temperatures below 0°C and to unravel the mystery of this behavior, measurements of the isobaric specific heat at temperatures below 0°C are required. In addition, researching the properties of liquids that do not exhibit negative thermal expansion, as in this study and comparing them with those of liquids that exhibit negative thermal expansion are important for understanding the thermodynamic properties of liquids as a whole. 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J Theor Comput Sci. 10:217.</p> <p> <strong>Received: </strong>24-May-2024, Manuscript No. JTCO-24-31668; <strong>Editor assigned: </strong>27-May-2024, Pre QC No. JTCO-24-31668 (PQ); <strong>Reviewed: </strong>11-Jun-2024, QC No. JTCO-24-31668;; <strong>Revised: </strong>18-Jun-2024, Manuscript No. JTCO-24-31668 (R); <strong>Published:</strong> 25-Jun-2024 , DOI: 10.35248/2376-130X.24.10.217</p> <p><strong>Copyright: </strong>漏 2024 Yasutomi M. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution and reproduction in any medium, provided the original author and source are credited.</p> </div> </div> </div> </div> </div> </section> <footer class="bg-blue-grey-900 py-3"> <div class="container"> <div class="row"> <div class="col-12 col-sm-4"> <h4 class="white font-size-4 fweight-400 border-bottom-1 pb-2">Content Links</h4> <ul class="list-unstyled footer-links font-size-3"> <li><a class="" href="https://www.longdom.org/online-tools.html" title="Click here">Tools</a> </li> <li><a class="" href="https://www.longdom.org/feedback.html" title="Click here">Feedback</a></li> <li><a class="" href="https://www.longdom.org/careers.html" title="Click here">Careers</a></li> <li><a class="" href="https://www.longdom.org/privacy-policy.html" title="Click here">Privacy Policy</a></li> <li><a class="" href="https://www.longdom.org/terms-conditions.html" title="Click here">Terms & Conditions</a></li> <li><a class="" href="https://www.longdom.org/authors-reviewers-editors.html" title="Click here">Authors, Reviewers & Editors</a></li> </ul> </div> <div class="col-12 col-sm-4"> <h4 class="white font-size-4 fweight-400 border-bottom-1 pb-2">Contact Longdom</h4> <p>Longdom Group SA<br> Avenue Roger Vandendriessche,<br> 18, 1150 Brussels, Belgium<br> Phone: +442038085340 <br><strong>Email:</strong> <a href="mailto:info@longdom.org" class="white" title="Click here">info@longdom.org</a></p> </div> <div class="col-12 col-sm-4"> <h4 class="white font-size-4 fweight-400 border-bottom-1 pb-2">Connect</h4> <nav class="nav nav-pills social-icons-footer flex-column a-pl-0"> <a href="https://www.facebook.com/longdompublisher" title="Click here" target="_blank" class="nav-link bg-facebook-hover"><i class="fab fa-facebook-f bg-facebook"></i> Facebook</a> <a href="https://www.linkedin.com/company/longdom-publishing-sl/" title="Click here" target="_blank" class="nav-link bg-linkedin-hover"><i class="fab fa-linkedin-in bg-linkedin"></i> Linkedin</a> <a href="https://twitter.com/LongdomP" title="Click here" target="_blank" class="nav-link bg-twitter-hover"><i class="fab fa-twitter bg-twitter"></i> Twitter</a> <a href="https://www.instagram.com/longdom_publisher/" title="Click here" target="_blank" class="nav-link bg-instagram-hover"><i class="fab fa-instagram bg-instagram"></i> Instagram</a> </nav> </div> </div> <div class="row text-center"> <div class="col"> <p>Copyright © 2024 <a href="https://www.longdom.org/" title="Click here" class="white">Longdom Publishing</a>.</p> </div> </div> </div> </footer> <!--========================== Scroll To Top ============================--> <a href="#0" class="cd-top js-cd-top">Top</a> <!-- Optional JavaScript --> <!-- jQuery first, then Popper.js, then Bootstrap JS --> <script defer src="https://code.jquery.com/jquery-3.3.1.min.js"></script> <script defer src="https://cdnjs.cloudflare.com/ajax/libs/popper.js/1.14.7/umd/popper.min.js"></script> <script defer src="https://stackpath.bootstrapcdn.com/bootstrap/4.3.1/js/bootstrap.min.js"></script> <!--Get the app icon js--> <script> jQuery(function($) { $(window).scroll(function fix_element() { $('#target').css( $(window).scrollTop() > 100 ? 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