Difference between revisions of "Team:Cornell/Design"

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                         </div>
 
                         </div>
 
                       <div class="content-title"><a id="components">COMPONENTS</a></div>
 
                       <div class="content-title"><a id="components">COMPONENTS</a></div>
                         <p>OxyPonics mechanical product consist of three main components.  The first component is a central housing box.  All electrical mechanisms and motors that power OxyPonics’s data gathering-and-response system are contained inside the water-tight box. The housing uses epoxy and 3D printed constructs to safely enclose all dry components of the product.  The second component is a rotating light module controlled by servos, which consists of two lights.  One light shines a 448 nm wavelength of light to activate the fluorescent protein [3] and the other a 576 nm wavelength of light to activate pDawn and produce enzymes to breakdown the oxidative stress [4].  The third component of the redox sensor is the mounted camera.  This camera measures the fluorescence emitted by the bacteria’s fluorescent protein and sends the appropriate amount of pDawn activating light. <u><b><a href="https://2017.igem.org/Team:Cornell/Software">Ratio-metric algorithms</a></b></u> use the camera’s readings to ensure the water surrounding a hydroponic plant stays at the optimal oxidative stress state.  All three components can be attached to our designed railing system to minimize the number of cameras a hydroponic farmer may need.  This railing system can capture real time data of each and every plant within an entire hydroponic bed.  
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                         <p>OxyPonics mechanical product consist of three main components.  The first component is a central housing box.  All electrical mechanisms and motors that power OxyPonics’s data gathering-and-response system are contained inside the water-tight box. The housing uses epoxy and 3D printed constructs to safely enclose all dry components of the product.  The second component is a rotating light module controlled by servos, which consists of two lights.  One light shines a 448 nm wavelength of light to activate the fluorescent protein [3] and the other a 576 nm wavelength of light to activate pDawn and produce enzymes to breakdown the oxidative stress [4].  The third component of the redox sensor is the mounted camera.  This camera measures the fluorescence emitted by the bacteria’s fluorescent protein and sends the appropriate amount of pDawn activating light. <a class="link" href="https://2017.igem.org/Team:Cornell/Software">Ratio-metric algorithms</a> use the camera’s readings to ensure the water surrounding a hydroponic plant stays at the optimal oxidative stress state.  All three components can be attached to our designed railing system to minimize the number of cameras a hydroponic farmer may need.  This railing system can capture real time data of each and every plant within an entire hydroponic bed.  
 
                         </p>
 
                         </p>
 
                       <div class="content-title"><a id="fabrication">FABRICATION</a></div>
 
                       <div class="content-title"><a id="fabrication">FABRICATION</a></div>

Revision as of 14:29, 28 October 2017

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