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<h3>Product Design</h3> | <h3>Product Design</h3> | ||
<img class="bigimg" src="https://static.igem.org/mediawiki/2018/2/26/T--NCKU_Tainan--applied_design_product.gif" alt="product design"> | <img class="bigimg" src="https://static.igem.org/mediawiki/2018/2/26/T--NCKU_Tainan--applied_design_product.gif" alt="product design"> | ||
− | <p class="pcenter">Fig 1. Flow chart of E. coli carbon utilization system </p> | + | <p class="pcenter">Fig 1. Flow chart of <i>E. coli</i> carbon utilization system </p> |
<ol> | <ol> | ||
<li class="licontent">Overview</li> | <li class="licontent">Overview</li> | ||
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</div> | </div> | ||
<p class="pcenter">Fig 2. Overview of the control system </p> | <p class="pcenter">Fig 2. Overview of the control system </p> | ||
− | <p class="pcontent">There are many aspects we need to consider. First, we calculate the emission velocity of CO<sub>2</sub> from the factory, as well as the medium exchange rate and the growth rate of | + | <p class="pcontent">There are many aspects we need to consider. First, we calculate the emission velocity of CO<sub>2</sub> from the factory, as well as the medium exchange rate and the growth rate of <i>E. coli</i>. </p> |
<p class="pcontent"> | <p class="pcontent"> | ||
Fig 1. is a process of whole <i>E. coli</i> carbon utilization that we design for industrial application. We simplify it into three parts which shows in Fig 2. to explain more clearly. Three switches control three parts, named A, B and C. Basically, the factory replaces the medium twice a day. At one hour before replacing the medium, the user needs to turn on switch C to discharge ninety percent of the medium. When it is time to replace the medium, switch C will be turned off and switch B will be turned on to refill medium. When sufficient medium is added, switch B will be turned off and switch A will be turned on to let CO<sub>2</sub> in. Just like the animation showed on Fig 1.. | Fig 1. is a process of whole <i>E. coli</i> carbon utilization that we design for industrial application. We simplify it into three parts which shows in Fig 2. to explain more clearly. Three switches control three parts, named A, B and C. Basically, the factory replaces the medium twice a day. At one hour before replacing the medium, the user needs to turn on switch C to discharge ninety percent of the medium. When it is time to replace the medium, switch C will be turned off and switch B will be turned on to refill medium. When sufficient medium is added, switch B will be turned off and switch A will be turned on to let CO<sub>2</sub> in. Just like the animation showed on Fig 1.. | ||
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<p class="pcontent">Meeting with experts and stakeholders is important in shaping our project to fulfill the needs of our target user. | <p class="pcontent">Meeting with experts and stakeholders is important in shaping our project to fulfill the needs of our target user. | ||
China Steel Corporation is the largest integrated steel Manufacturer in Taiwan. Also, they had been adopting the algal bio-sequestration by | China Steel Corporation is the largest integrated steel Manufacturer in Taiwan. Also, they had been adopting the algal bio-sequestration by | ||
− | cooperating with the research group at our university | + | cooperating with the research group at our university. |
− | + | ||
</p> | </p> | ||
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<p class="pcontent">Will the high concentration of CO<sub>2</sub> retard growth of engineered bacteria?</p> | <p class="pcontent">Will the high concentration of CO<sub>2</sub> retard growth of engineered bacteria?</p> | ||
<p class="pcontent">Microalgae is reported resistant to SOx and NOx. Does <i>E. coli</i> survive under such conditions?</p> | <p class="pcontent">Microalgae is reported resistant to SOx and NOx. Does <i>E. coli</i> survive under such conditions?</p> | ||
− | <p class="pcontent">The best condition for engineered <i>E. coli</i> to capture CO<sub>2</sub> is a lower CO<sub>2</sub> | + | <p class="pcontent">The two questions above were the main concern of CSC. Basically,the best condition for engineered <i>E. coli</i> to capture CO<sub>2</sub> is a lower CO<sub>2</sub> |
concentration without too much SOx and NOx particles. | concentration without too much SOx and NOx particles. | ||
However, we won’t be able to provide an ideal culture condition in Industrial application. | However, we won’t be able to provide an ideal culture condition in Industrial application. | ||
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<th colspan="1">Number of required device</th> | <th colspan="1">Number of required device</th> | ||
<th colspan="1">Area required</th> | <th colspan="1">Area required</th> | ||
− | <th colspan="1">Operation cost</th> | + | <th colspan="1">Operation cost (USD)</th> |
</tr> | </tr> | ||
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<td colspan="1">4555</td> | <td colspan="1">4555</td> | ||
<td colspan="1">11.3875 hectare</td> | <td colspan="1">11.3875 hectare</td> | ||
− | <td colspan="1">150.4 thousands | + | <td colspan="1">150.4 thousands </td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
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<td colspan="1">537</td> | <td colspan="1">537</td> | ||
<td colspan="1">1.34 hectare</td> | <td colspan="1">1.34 hectare</td> | ||
− | <td colspan="1">17.3 thousands | + | <td colspan="1">17.3 thousands </td> |
</tr> | </tr> | ||
<tr> | <tr> | ||
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<td colspan="1">29</td> | <td colspan="1">29</td> | ||
<td colspan="1">0.0713 hectare</td> | <td colspan="1">0.0713 hectare</td> | ||
− | <td colspan="1">1 thousands | + | <td colspan="1">1 thousands </td> |
</tr> | </tr> | ||
</table> | </table> |
Revision as of 02:42, 18 October 2018