Difference between revisions of "Team:Tianjin/Model"

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<p>\[\Delta G = \Delta H - T\Delta S\]</p>
 
<p>\[\Delta G = \Delta H - T\Delta S\]</p>
 
<p>\(\Delta H\):Enthalpy change of biosorption process,kJ/mol;<br>
 
<p>\(\Delta H\):Enthalpy change of biosorption process,kJ/mol;<br>
(\Delta S\):Entropy change of biosorption process,kJ/(mol·s);<br>
+
\(\Delta S\):Entropy change of biosorption process,kJ/(mol·s);<br>
 
\(\Delta G\):Gibbs free energy change in biosorption process,kJ/mol.<br>
 
\(\Delta G\):Gibbs free energy change in biosorption process,kJ/mol.<br>
 
</p>
 
</p>
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<p>\[\ln {K_c} =  - (\frac{{\Delta H}}{R})(\frac{1}{T}) + \frac{{\Delta S}}{R}\]</p>
 
<p>\[\ln {K_c} =  - (\frac{{\Delta H}}{R})(\frac{1}{T}) + \frac{{\Delta S}}{R}\]</p>
 
<p>By setting different concerntation gradient for absorption experiments,the data of 1/T and lnKc can be obtained, and the value of H and S can be obtained by linear regression. </p>
 
<p>By setting different concerntation gradient for absorption experiments,the data of 1/T and lnKc can be obtained, and the value of H and S can be obtained by linear regression. </p>
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<img src="">
 
<p>Fig.2 Linear regression of data 1/T and lnKc</p>
 
<p>Fig.2 Linear regression of data 1/T and lnKc</p>
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<p>If \(\Delta H\) > 0,the absorption process can be judged as an endothermic process,vice versa. Besides, the size of the enthalpy variable value can also be used to distinguish between physical adsorption and chemical adsorption. (\Delta S\)>0 indicates that the molecular disorder increases during this adsorption process, and vice versa. (\Delta G\) <0 means that the adsorption process can be carried out spontaneously.</p>
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<h5>Model of Adsorption process</h5>
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<p>Static adsorption<br>
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Define the equilibrium adsorption capacity of yeast for heavy metal ions q</p>
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<p>\[q = \frac{{({c_0} - c){V_L}}}{{wk}}\]</p>
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<p>\({{c_0}}\) :Initial concentration of copper ions in solution, mg/L;<br>
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        c : Equilibrium concentration of copper ions in solution, mg/L ;<br>
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        \({{V_L}}\) : Solution volume, L;<br>
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        w : Yeast quality at equilibrium, g ;<br>
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        k : The volume of 1g yeast at equilibrium, L/g.</p>
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<p>In order to study the adsorption process of yeast on heavy metal ions, we used Freundich and Langmuir isothermal adsorption equation to fit the adsorption process of yeast on copper ions.<br>
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Freundich adsorption equation:</p>
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<p>\[{q_e} = k{C_e}^{1/n}\]</p>
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<p>Take the logarithm: on both side of equation:<br>
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\[\ln {q_e} = \frac{1}{{n\ln {C_e}}} + \ln k\]<br>
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Langmuir absorption equation:<br>
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\[{q_e} = \frac{{a{q_m}}}{{1 + a{C_e}}}\]<br>
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Transform this equation:<br>
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\[\frac{{{C_e}}}{{{q_e}}} = \frac{{{C_e}}}{{{q_m}}} + \frac{1}{{a{q_m}}}\]</p>
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Revision as of 03:04, 27 October 2017

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Model