Difference between revisions of "Team:Hong Kong-CUHK/Modeling"
Sharoncheung (Talk | contribs) |
Angellukpy25 (Talk | contribs) m |
||
Line 9: | Line 9: | ||
} | } | ||
</style> | </style> | ||
− | <center><div style="text-align:justify; text-justify:inter-ideograph; width: | + | <center><div style="text-align:justify; text-justify:inter-ideograph; width:800px"> |
<h1>Modeling</h1> | <h1>Modeling</h1> | ||
Line 62: | Line 62: | ||
− | <center><img src="https://static.igem.org/mediawiki/2015/6/6f/CUHK_Modeling_Binding_activity.jpg"></center> | + | <center><img src="https://static.igem.org/mediawiki/2015/6/6f/CUHK_Modeling_Binding_activity.jpg" width="600px"></center> |
− | <p><b>Figure 1: | + | <p style="font-size: 12px"><b>Figure 1:</b> Binding activity</p> |
<p>For Forward Reaction (Association) rate: </p> | <p>For Forward Reaction (Association) rate: </p> | ||
Line 82: | Line 82: | ||
− | <img src="https://static.igem.org/mediawiki/2015/2/20/CUHK_Modeling_Figure_2.jpg"> | + | <img src="https://static.igem.org/mediawiki/2015/2/20/CUHK_Modeling_Figure_2.jpg" width="800px"> |
− | <p><b>Figure 2</b></p> | + | <p style="font-size: 12px"><b>Figure 2</b></p> |
<p>From Figure 2, we can see that when the molarity of antigen below that of GFP-nanobody (7.78 × 10<sup>-7</sup> M), it becomes the limiting reagent, and the final molarity of the nanobody-antigen complex equals the initial molarity of antigen, vice versa.</p><br> | <p>From Figure 2, we can see that when the molarity of antigen below that of GFP-nanobody (7.78 × 10<sup>-7</sup> M), it becomes the limiting reagent, and the final molarity of the nanobody-antigen complex equals the initial molarity of antigen, vice versa.</p><br> | ||
Line 105: | Line 105: | ||
<p>In this model, current density distribution in hydrogen-oxygen fuel cell was studied. It included the fuel coupling between the mass balances at the anode and cathode; the momentum balances in the gas channel; the gas flow in the porous electrodes; the balance of the ionic current carried by the mediator; and an electronic current balance.</p> | <p>In this model, current density distribution in hydrogen-oxygen fuel cell was studied. It included the fuel coupling between the mass balances at the anode and cathode; the momentum balances in the gas channel; the gas flow in the porous electrodes; the balance of the ionic current carried by the mediator; and an electronic current balance.</p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/9/93/CUHK_Modeling_Figure_3.jpg"> | + | <img src="https://static.igem.org/mediawiki/2015/9/93/CUHK_Modeling_Figure_3.jpg" height="400px"> |
− | < | + | <p style="font-size: 12px"><b>Figure 3</b></p> |
<p>The fuel cell in the cathode and anode is counter-flow and it shows that the hydrogen-rich anode gas is entering from the left. The electrochemical reaction in the cell are give below:</p> | <p>The fuel cell in the cathode and anode is counter-flow and it shows that the hydrogen-rich anode gas is entering from the left. The electrochemical reaction in the cell are give below:</p> | ||
Line 123: | Line 123: | ||
<p>Assuming the Butler-Volmer charge transfer kinetics describes the charge transfer current density and the first electron transfer is used to be rate determining step at the anode, hydrogen is oxidized to form hydrogen ion.</p> | <p>Assuming the Butler-Volmer charge transfer kinetics describes the charge transfer current density and the first electron transfer is used to be rate determining step at the anode, hydrogen is oxidized to form hydrogen ion.</p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/1/11/CUHK_Modeling_Formula_i%28a%2Cct%29.jpg"> | + | <center><img src="https://static.igem.org/mediawiki/2015/1/11/CUHK_Modeling_Formula_i%28a%2Cct%29.jpg" width="500px"></center> |
<p>i<sub>0</sub>,a = the anode exchange current density (A m<sup>-2</sup>)</p> | <p>i<sub>0</sub>,a = the anode exchange current density (A m<sup>-2</sup>)</p> | ||
Line 137: | Line 137: | ||
<p>For the cathode:</p> | <p>For the cathode:</p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/7/7a/CUHK_Modeling_Formula_i%28c%2Cct%29.jpg"> | + | <center><img src="https://static.igem.org/mediawiki/2015/7/7a/CUHK_Modeling_Formula_i%28c%2Cct%29.jpg" width="500px"></center> |
Line 144: | Line 144: | ||
<p>At the anode’s inlet boundary, the potential is fixed at a reference potential of zero. At the cathode’s inlet boundary, set the potential to the cell voltage, V<sub>cell</sub>. The latter is given by</p> | <p>At the anode’s inlet boundary, the potential is fixed at a reference potential of zero. At the cathode’s inlet boundary, set the potential to the cell voltage, V<sub>cell</sub>. The latter is given by</p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/2/24/CUHK_Modeling_Formula_v%28cell%29.jpg"> | + | <center><img src="https://static.igem.org/mediawiki/2015/2/24/CUHK_Modeling_Formula_v%28cell%29.jpg" width="500px"></center> |
<p>where V<sub>pol</sub> is the polarization.</p><p>In this model, Δ φ<sub>eq,c</sub> = 1 V and Δ φ<sub>eq,a</sub> = 0 V ,and the fuel cell over the range 0.2 ≤ V<sub>cell</sub> ≤ 0.95 V is simulated by using V<sub>pol</sub> in the range 0.05 V through 0.8 V as the parameter for the parametric solver.</p> | <p>where V<sub>pol</sub> is the polarization.</p><p>In this model, Δ φ<sub>eq,c</sub> = 1 V and Δ φ<sub>eq,a</sub> = 0 V ,and the fuel cell over the range 0.2 ≤ V<sub>cell</sub> ≤ 0.95 V is simulated by using V<sub>pol</sub> in the range 0.05 V through 0.8 V as the parameter for the parametric solver.</p> | ||
Line 150: | Line 150: | ||
<p>Results: The following figure shows the hydrogen mole fraction in the anode at a cell polarization of 0.5 V</p> | <p>Results: The following figure shows the hydrogen mole fraction in the anode at a cell polarization of 0.5 V</p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/f/f0/CUHK_Modeling_anode.jpg"> | + | <img src="https://static.igem.org/mediawiki/2015/f/f0/CUHK_Modeling_anode.jpg" width="600px"> |
Line 160: | Line 160: | ||
<p>The following figure shows the oxygen mole fraction in the cathode:</p> | <p>The following figure shows the oxygen mole fraction in the cathode:</p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/a/aa/CUHK_Modeling_cathode.jpg"> | + | <img src="https://static.igem.org/mediawiki/2015/a/aa/CUHK_Modeling_cathode.jpg" width="600px"> |
Line 173: | Line 173: | ||
power-output for this unit cell is about 940 W m<sup>-2</sup></p> | power-output for this unit cell is about 940 W m<sup>-2</sup></p> | ||
− | <img src="https://static.igem.org/mediawiki/2015/d/d7/CUHK_Modeling_Graph.jpg"> | + | <img src="https://static.igem.org/mediawiki/2015/d/d7/CUHK_Modeling_Graph.jpg" width="800px"> |
Latest revision as of 01:54, 7 October 2015