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

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<li>Lars Brammer Nejrup. (2013). Temperature- and light-dependent growth and metabolism of the invasive red algae Gracilaria vermiculophylla – a comparison with two native macroalgae. <i>European journal of phycology<i> (2013), 48(3): 295–308.
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<li>Lars Brammer Nejrup. (2013). Temperature- and light-dependent growth and metabolism of the invasive red algae Gracilaria vermiculophylla – a comparison with two native macroalgae. <i>European journal of phycology</i> (2013), 48(3): 295–308.
<li>Joel C. Goldman, Edward J. Carpenter. (1974). A kinetic approach to the effect of temperature on algal growth. <i>Limnology and Oceanography<i> Volume 19, Issue 5 September 1974 Pages 756–766. DOI: 10.4319/lo.1974.19.5.0756
+
<li>Joel C. Goldman, Edward J. Carpenter. (1974). A kinetic approach to the effect of temperature on algal growth. <i>Limnology and Oceanography</i> Volume 19, Issue 5 September 1974 Pages 756–766. DOI: 10.4319/lo.1974.19.5.0756
<li>P. Duarte. (1995). A mechanistic model of the effects of light and temperature on algal primary productivity. <i>Ecological Modelling<i> 82 (1995) 151-160
+
<li>P. Duarte. (1995). A mechanistic model of the effects of light and temperature on algal primary productivity. <i>Ecological Modelling</i> 82 (1995) 151-160
<li>Ignatius J. Menzies. (2016). Leaf colour polymorphisms: a balance between plant defence and photosynthesis. <i>Journal of Ecology<i> 2016, 104, 104–113
+
<li>Ignatius J. Menzies. (2016). Leaf colour polymorphisms: a balance between plant defence and photosynthesis. <i>Journal of Ecology</i> 2016, 104, 104–113
<li>T. A. Costache. (2013). Comprehensive model of microalgae photosynthesis rate as a function of culture conditions in photobioreactors. <i>Applied Microbiology and Biotechnology<i> (2013) 97:7627–7637
+
<li>T. A. Costache. (2013). Comprehensive model of microalgae photosynthesis rate as a function of culture conditions in photobioreactors. <i>Applied Microbiology and Biotechnology</i> (2013) 97:7627–7637
<li>Bo Kong. (2014). Simulation of photosynthetically active radiation distribution in algal photobioreactors using a multidimensional spectral radiation model. <i>Bioresource Technology<i> 158 (2014) 141–148
+
<li>Bo Kong. (2014). Simulation of photosynthetically active radiation distribution in algal photobioreactors using a multidimensional spectral radiation model. <i>Bioresource Technology</i> 158 (2014) 141–148
<li>M. A. Mohammad Mirzaie. (2016). Kinetic modeling of mixotrophic growth of Chlorella vulgaris as a new feedstock for biolubricant. <i>Journal of Applied Phycology<i>. DOI 10.1007/s10811-016-0841-4
+
<li>M. A. Mohammad Mirzaie. (2016). Kinetic modeling of mixotrophic growth of Chlorella vulgaris as a new feedstock for biolubricant. <i>Journal of Applied Phycology</i>. DOI 10.1007/s10811-016-0841-4
<li>Junhai Ma. (2012). Stability of a three-species symbiosis model with delays. <i>Nonlinear Dynamics<i> (2012) 67:567–572. DOI:10.1007/s11071-011-0009-3
+
<li>Junhai Ma. (2012). Stability of a three-species symbiosis model with delays. <i>Nonlinear Dynamics</i> (2012) 67:567–572. DOI:10.1007/s11071-011-0009-3
<li>M. Bekirogullari. (2017). Production of lipid-based fuels and chemicals from microalgae: An integrated experimental and model-based optimization study. <i>Algal Research<i> 23 (2017)  78–87.
+
<li>M. Bekirogullari. (2017). Production of lipid-based fuels and chemicals from microalgae: An integrated experimental and model-based optimization study. <i>Algal Research</i> 23 (2017)  78–87.
<li>JinShui Yang. (2011). Mathematical model of Chlorella minutissima UTEX2341 growth and lipid production under photoheterotrophic fermentation conditions. <i>Bioresource Technology<i> 102 (2011) 3077–3082
+
<li>JinShui Yang. (2011). Mathematical model of Chlorella minutissima UTEX2341 growth and lipid production under photoheterotrophic fermentation conditions. <i>Bioresource Technology</i> 102 (2011) 3077–3082
<li>Steven A. Morris. (2003). Analysis of the Lotka–Volterra competition equations as a technological substitution model. <i>Technological Forecasting & Social Change<i> 70 (2003) 103–133
+
<li>Steven A. Morris. (2003). Analysis of the Lotka–Volterra competition equations as a technological substitution model. <i>Technological Forecasting & Social Change</i> 70 (2003) 103–133
<li>Xian-Ming Shia. (2000). Heterotrophic production of biomass and lutein by Chlorella protothecoides on various nitrogen sources. <i>Enzyme and Microbial Technology<i> 27 (2000) 312–318
+
<li>Xian-Ming Shia. (2000). Heterotrophic production of biomass and lutein by Chlorella protothecoides on various nitrogen sources. <i>Enzyme and Microbial Technology</i> 27 (2000) 312–318
<li>Aaron Packer. (2011). Growth and neutral lipid synthesis in green microalgae: A mathematical model. <i>Bioresource Technology<i> 102 (2011) 111–117
+
<li>Aaron Packer. (2011). Growth and neutral lipid synthesis in green microalgae: A mathematical model. <i>Bioresource Technology</i> 102 (2011) 111–117
<li>Joseph Hunt, California State Polytechnic University, Pomona and Loyola Marymount (2005). A Continuous Model of Gene Expression. <i>University Department of Mathematics Technical Report<i> August 2005
+
<li>Joseph Hunt, California State Polytechnic University, Pomona and Loyola Marymount (2005). A Continuous Model of Gene Expression. <i>University Department of Mathematics Technical Report</i> August 2005
 
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Revision as of 15:15, 25 October 2017

MODELING

  Modeling is an extremely important part to our project, because it helps us accurately check and predict the results 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.

Chlorella vulgaris

  The modeling from figure 6 to figure 12 belongs to the experiments of Chlorella vulgaris nitrogen starvation.