Difference between revisions of "Team:NYMU-Taipei/Model"

Line 336: Line 336:
 
alt='irradiance-photosynthesis rate plot'
 
alt='irradiance-photosynthesis rate plot'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.1-1 Influence of irradiance on photosynthesis rate</p>
+
<p style='font-size:20px'>Fig.1-1 Influence of irradiance on photosynthesis rate</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 395: Line 395:
 
alt='temperature-photosynthesis rate plot'
 
alt='temperature-photosynthesis rate plot'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.1-2 Influence of temperature on photosynthesis rate</p>
+
<p style='font-size:20px'>Fig.1-2 Influence of temperature on photosynthesis rate</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 462: Line 462:
 
alt='Simulation of energy absorption of each pigment'
 
alt='Simulation of energy absorption of each pigment'
 
style='width:55%'>
 
style='width:55%'>
<p style='font-size:20px'>fig.2 Simulation of energy absorption of each pigment</p>
+
<p style='font-size:20px'>Fig.2 Simulation of energy absorption of each pigment</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 543: Line 543:
 
alt='Microalgae productivity in different temperature'
 
alt='Microalgae productivity in different temperature'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.3 Microalgae productivity in different temperature</p>
+
<p style='font-size:20px'>Fig.3 Microalgae productivity in different temperature</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 615: Line 615:
 
alt='Microalgae productivity in different pH'
 
alt='Microalgae productivity in different pH'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.4 Microalgae productivity in different pH</p>
+
<p style='font-size:20px'>Fig.4 Microalgae productivity in different pH</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 687: Line 687:
 
alt='The relation between photosynthetic rate and total yield'
 
alt='The relation between photosynthetic rate and total yield'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.5 The relation between photosynthetic rate and total absorption</p>
+
<p style='font-size:20px'>Fig.5 The relation between photosynthetic rate and total absorption</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 769: Line 769:
 
alt='Growth curve of Chlorella vulgaris'
 
alt='Growth curve of Chlorella vulgaris'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.6-1 Growth curve of <i>Chlorella vulgaris</i></p>
+
<p style='font-size:20px'>Fig.6-1 Growth curve of <i>Chlorella vulgaris</i></p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 777: Line 777:
 
alt='Growth rate of Chlorella vulgaris'
 
alt='Growth rate of Chlorella vulgaris'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.6-2 Growth rate of <i>Chlorella vulgaris</i></p>
+
<p style='font-size:20px'>Fig.6-2 Growth rate of <i>Chlorella vulgaris</i></p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 885: Line 885:
 
alt='Oil accumulation and nirogen source consumption at normal situation'
 
alt='Oil accumulation and nirogen source consumption at normal situation'
 
style='width:90%'>
 
style='width:90%'>
<p style='font-size:20px'>fig.7 Oil accumulation and nirogen source consumption at normal situation</p>
+
<p style='font-size:20px'>Fig.7 Oil accumulation and nirogen source consumption at normal situation</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 997: Line 997:
 
alt='Biomass in different nitrogen concentration'
 
alt='Biomass in different nitrogen concentration'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.8 Biomass in different nitrogen concentration</p>
+
<p style='font-size:20px'>Fig.8 Biomass in different nitrogen concentration</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,062: Line 1,062:
 
alt='Nitrogen source in nitrogen starvation'
 
alt='Nitrogen source in nitrogen starvation'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.9 Nitrogen source in nitrogen starvation</p>
+
<p style='font-size:20px'>Fig.9 Nitrogen source in nitrogen starvation</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,128: Line 1,128:
 
alt='Oil accumulation in nitrogen starvation'
 
alt='Oil accumulation in nitrogen starvation'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.10 Oil accumulation in nitrogen starvation</p>
+
<p style='font-size:20px'>Fig.10 Oil accumulation in nitrogen starvation</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,226: Line 1,226:
 
alt='Population of co-cultured Chlorella and modified E.coli'
 
alt='Population of co-cultured Chlorella and modified E.coli'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.11-1 Population of co-cultured Chlorella and modified E.coli(initial concentration 0.1g/l)</p>
+
<p style='font-size:20px'>Fig.11-1 Population of co-cultured Chlorella and modified E.coli(initial concentration 0.1g/l)</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,234: Line 1,234:
 
alt='Population of co-cultured Chlorella and modified E.coli'
 
alt='Population of co-cultured Chlorella and modified E.coli'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.11-2 Population of co-cultured Chlorella and modified E.coli(initial concentration 0.012g/l)</p>
+
<p style='font-size:20px'>Fig.11-2 Population of co-cultured Chlorella and modified E.coli(initial concentration 0.012g/l)</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,242: Line 1,242:
 
alt='Population of co-cultured Chlorella and modified E.coli'
 
alt='Population of co-cultured Chlorella and modified E.coli'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.11-3 Population of co-cultured Chlorella and modified E.coli(initial concentration 0.3g/l)</p>
+
<p style='font-size:20px'>Fig.11-3 Population of co-cultured Chlorella and modified E.coli(initial concentration 0.3g/l)</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,328: Line 1,328:
 
alt='Nitrogen-lipid plot'
 
alt='Nitrogen-lipid plot'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.12 Nitrogen-lipid plot</p>
+
<p style='font-size:20px'>Fig.12 Nitrogen-lipid plot</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>
Line 1,451: Line 1,451:
 
alt='NrtA exocrine secretion'
 
alt='NrtA exocrine secretion'
 
style='width:65%'>
 
style='width:65%'>
<p style='font-size:20px'>fig.13 NrtA exocrine secretion</p>
+
<p style='font-size:20px'>Fig.13 NrtA exocrine secretion</p>
 
</center>
 
</center>
 
<p></p>
 
<p></p>

Revision as of 12:32, 1 November 2017

MODELING

  This year, our modeling focuses on predicting the result of our modified microbes’ effect on productivity. It is an extremely important part to our project, because it helps us accurately check and predict some information of the experiments, which are worked in the wet lab. In our project, there are two essential types of microalgae that play very important roles, Synechococcus PCC7942 and Chlorella vulgaris. The following will show our success in modeling.

Synechococcus PCC7942

  The modeling from figure 1 to figure 5 belongs to the experiments of Synechococcus PCC7942 pigments for better photosynthetic efficiencies. We need to check if another microalgae, which contains exogenous pigment, can successfully reach new photosynthesis rate, and further increase biomass proportion. We already have models about the influence of energy adsorption, but pigments will certainly affect other factors. Therefore, we construct several models that each represents an important factor on growth and cell composition. Importantly, we can determine the best culturing collocation by combining these models.

Chlorella vulgaris

  The modeling from figure 6 to figure 13 belongs to the experiments of Chlorella vulgaris for nitrogen starvation. To precisely calculate the time of starting co-culturing and ensure there are enough high affinity E. coli in bioreactor, we build several models, which include the original system and new one. They demonstrate the significant improvement of productivity, after successfully isolated the microalgae from nitrogen. For instance, one of them provide variety information about population when two organisms in the pool start building some relationship.