Difference between revisions of "Thermodynamics"
(→Vapor-liquid equilibrium diagram ideal mixture) |
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− | == | + | ==Phase diagram of an ideal solution at fixed temperature== |
+ | The following plot shows the vapor-liquid phase diagram for a binary ideal mixture (components: A and B). The vapor pressures of the pure substances are <math>p_A^*</math> and <math>p_B^*</math>, respectively. | ||
+ | |||
+ | The blue curve shows the vapor pressure <math>p</math> of the mixture as a function of the mole fraction of A in the liquid <math>x_A^l</math>: | ||
+ | |||
+ | <center> | ||
+ | <math>p=p_B^*+(p_A^*-p_B^*)x_A^l</math> | ||
+ | </center> | ||
+ | |||
+ | The red curve shows the vapor pressure <math>p</math> of the mixture as a function of the mole fraction of A in the vapor <math>x_A^v</math>: | ||
+ | |||
+ | <center> | ||
+ | <math>p=\dfrac{p_A^*p_B^*}{p_A^*-(p_A^*-p_B^*)x_A^v}</math> | ||
+ | </center> | ||
+ | |||
+ | In the example below <math>p_A^*=1</math> (a.u.) and the value of <math>p_B^*</math> can be changed moving the slider below. | ||
− | |||
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<head> | <head> | ||
− | + | <div align='center'> | |
+ | |||
<meta charset="utf-8"> | <meta charset="utf-8"> | ||
<title>slider.py example</title> | <title>slider.py example</title> | ||
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− | <div class="bk-root" id=" | + | <div class="bk-root" id="0a3d58d8-edf7-46d8-a100-536fcb083c22"></div> |
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</script> | </script> | ||
<script type="text/javascript"> | <script type="text/javascript"> | ||
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function embed_document(root) { | function embed_document(root) { | ||
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+ | </div> | ||
+ | </body> | ||
+ | |||
+ | </html> | ||
+ | |||
+ | |||
+ | The number of moles in each phase (liquid or vapor) can be obtained from the lever rule: | ||
+ | <center> | ||
+ | <math>n^l\overline{\text{BK}}=n^v\overline{\text{KR}}</math> | ||
+ | </center> | ||
+ | |||
+ | |||
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+ | </script> | ||
+ | <script type="text/javascript"> | ||
+ | (function() { | ||
+ | var fn = function() { | ||
+ | Bokeh.safely(function() { | ||
+ | (function(root) { | ||
+ | function embed_document(root) { | ||
+ | |||
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Latest revision as of 09:22, 29 May 2023
Phase diagram of an ideal solution at fixed temperature
The following plot shows the vapor-liquid phase diagram for a binary ideal mixture (components: A and B). The vapor pressures of the pure substances are [math]p_A^*[/math] and [math]p_B^*[/math], respectively.
The blue curve shows the vapor pressure [math]p[/math] of the mixture as a function of the mole fraction of A in the liquid [math]x_A^l[/math]:
[math]p=p_B^*+(p_A^*-p_B^*)x_A^l[/math]
The red curve shows the vapor pressure [math]p[/math] of the mixture as a function of the mole fraction of A in the vapor [math]x_A^v[/math]:
[math]p=\dfrac{p_A^*p_B^*}{p_A^*-(p_A^*-p_B^*)x_A^v}[/math]
In the example below [math]p_A^*=1[/math] (a.u.) and the value of [math]p_B^*[/math] can be changed moving the slider below.
The number of moles in each phase (liquid or vapor) can be obtained from the lever rule:
[math]n^l\overline{\text{BK}}=n^v\overline{\text{KR}}[/math]
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