Difference between revisions of "Team:HFLS ZhejiangUnited/Applied Design"

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<h3>★  ALERT! </h3>
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<p>This page is used by the judges to evaluate your team for the <a href="https://2018.igem.org/Judging/Medals">medal criterion</a> or <a href="https://2018.igem.org/Judging/Awards"> award listed below</a>. </p>
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<p> Delete this box in order to be evaluated for this medal criterion and/or award. See more information at <a href="https://2018.igem.org/Judging/Pages_for_Awards"> Instructions for Pages for awards</a>.</p>
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<!-- ==================== content satrt ==================== -->
  
<div class="column full_size">
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  <section class="global-page-header">
<h1>Applied Design</h1>
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                        <h2>
  
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Applied Design
  
<div class="column two_thirds_size">
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                        </h2>
<h3>Best Applied Design Special Prize</h3>
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                    </div>
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                </div>
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            </div>
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        </div>
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<p>This is a prize for the team that has developed a synbio product to solve a real world problem in the most elegant way. The students will have considered how well the product addresses the problem versus other potential solutions, how the product integrates or disrupts other products and processes, and how its lifecycle can more broadly impact our lives and environments in positive and negative ways.
 
<br><br>
 
To compete for the <a href="https://2018.igem.org/Judging/Awards">Best Applied Design prize</a>, please describe your work on this page and also fill out the description on the <a href="https://2018.igem.org/Judging/Judging_Form">judging form</a>.
 
<br><br>
 
You must also delete the message box on the top of this page to be eligible for this prize.
 
</p>
 
</div>
 
  
  
<div class="column third_size">
 
<div class="highlight decoration_A_full">
 
<h3>Inspiration</h3>
 
<p>Take a look at what some teams accomplished for this prize.</p>
 
<ul>
 
<li><a href="https://2016.igem.org/Team:NCTU_Formosa/Design">2016 NCTU Formosa</a></li>
 
<li><a href="https://2016.igem.org/Team:HSiTAIWAN/Product?locationId=Design">2016 HSiTAIWAN</a></li>
 
<li><a href="https://2016.igem.org/Team:Pasteur_Paris/Design">2016 Pasteur Paris</a></li>
 
</ul>
 
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<!-- ==================== main satrt ==================== -->
  
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<h2>Design of Formaldehyde-Degrading Machine with Escherichia Coli</h2>
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<p>Our project is aiming to eliminate formaldehyde in the real world, such as newly decorated houses, cars, furniture factory, etc. Basing on previous experiment results, we designed a Formaldehyde-Degrading Machine, including air pump and strainer, air diffusion device, formaldehyde-detecting and degrading device, and no-return exhaust device, etc. Our ultimate goal is to design a formaldehyde purification device. This equipment can not only alarm the excess formaldehyde but also directly biodegraded formaldehyde by the constructed bacteria, which can effectively to solve the problem aroused by formaldehyde excess. The working principle and design ideas are as follows.</p>
  
 +
<p>To be simple, the procedure of eliminating formaldehyde is as follows:</p>
  
 +
<p>1. Pump air into the strainer (Figure 1a), and cast off harmful bacteria and other granules simultaneously.</p>
  
 +
<p>2. Add LB media into the container.</p>
 +
 +
<p>3. Render the resulting gas to diffuse across small pores (Figure 1b), in the purpose of maximum blending, into media containing engineered Escherichia coli.</p>
 +
 +
<p>4. Detect and degrade formaldehyde in detecting device (Figure 1c). When the concentration of formaldehyde excess, the RFP can be expressed, and the level of degradation can be manifested by the intensity of absorbance qualitatively and then by the intensity of fluorescence quantitatively, which can also be seen by the transparent solution.</p>
 +
 +
<p>5. Purified air is exhausted across the non-return valve (Figure 1d).</p>
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<div style="text-align: center;"><img src=" https://static.igem.org/mediawiki/2018/e/ed/T--HFLS_ZhejiangUnited--Figure-applied_design.png" width="700" /></div>
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<p style="text-align: center;">Figure 1 Schematic diagram of formaldehyde-degrading machine.</p>
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                        <p>HFLS Zhejiang United </p>
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                        Schools: Peking University Experimental School(Jiaxing), Hangzhou Foreign Language School, etc.
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Latest revision as of 23:02, 17 October 2018

Applied Design

Design of Formaldehyde-Degrading Machine with Escherichia Coli

Our project is aiming to eliminate formaldehyde in the real world, such as newly decorated houses, cars, furniture factory, etc. Basing on previous experiment results, we designed a Formaldehyde-Degrading Machine, including air pump and strainer, air diffusion device, formaldehyde-detecting and degrading device, and no-return exhaust device, etc. Our ultimate goal is to design a formaldehyde purification device. This equipment can not only alarm the excess formaldehyde but also directly biodegraded formaldehyde by the constructed bacteria, which can effectively to solve the problem aroused by formaldehyde excess. The working principle and design ideas are as follows.

To be simple, the procedure of eliminating formaldehyde is as follows:

1. Pump air into the strainer (Figure 1a), and cast off harmful bacteria and other granules simultaneously.

2. Add LB media into the container.

3. Render the resulting gas to diffuse across small pores (Figure 1b), in the purpose of maximum blending, into media containing engineered Escherichia coli.

4. Detect and degrade formaldehyde in detecting device (Figure 1c). When the concentration of formaldehyde excess, the RFP can be expressed, and the level of degradation can be manifested by the intensity of absorbance qualitatively and then by the intensity of fluorescence quantitatively, which can also be seen by the transparent solution.

5. Purified air is exhausted across the non-return valve (Figure 1d).

Figure 1 Schematic diagram of formaldehyde-degrading machine.

  • HFLS Zhejiang United

    Schools: Peking University Experimental School(Jiaxing), Hangzhou Foreign Language School, etc.