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首页> 外文期刊>South african journal of chemical engineering >Modeling of phycocyanin production from Spirulina platensis using different light-emitting diodes
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Modeling of phycocyanin production from Spirulina platensis using different light-emitting diodes

机译:利用不同发光二极管的植物:斜视>螺旋藻(Spirulina Platensis )植物生成的建模

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摘要

Phycocyanin is a high-value chromo-protein used in various industries. In this research, a simulation study of kinetics is carried out to identify different light spectra effects on microbial growth and phycocyanin production from the cyanobacteriaSpirulina platensis. The results are compared with experimental data obtained from previous studies, and an acceptable accuracy is achieved in all the evaluated light spectra. Particular emphasis was placed on determining axial kinetic velocities simulated at different spectra regarding the latency, exponential and stationary microbial growth phases. According to the results obtained, cells grown in exponential phase lighted with red spectrum tend to resist the photo-limitation to a greater degree than cell exposure to white, green and yellow light. The latter is because phycocyanin allows a more excellent wavelength absorption from the red light. Contrarily, the light intensity for all spectra is reduced by around 80% at the inner bioreactor area regarding the intensity reached on the equipment surface during the stationary phase. Also, cell growth and phycocyanin production kinetic rates tend to be close to zero for all spectra, considering more than 50% of the inner bioreactor zone. This finding found in this research may be a key factor for the design of new photobioreactors so that these dark areas could be overcome by installing rotating internal lighting systems to guarantee the photosynthesis process of cyanobacteria in all regions of the bioreactor and thus avoid the phenomenon of photo-limitation due to low light intensities.
机译:植物植物是各种行业的高价值铬蛋白。在该研究中,进行了动力学的模拟研究,以确定来自Cyanobacteriaspirulina Platchariss的微生物生长和植物植物产生的不同光谱影响。将结果与从先前研究获得的实验数据进行比较,并且在所有评估的光谱中实现了可接受的精度。特别强调确定在不同光谱上模拟的关于潜伏期,指数和固定微生物生长阶段的轴向动力学速度。根据所得的结果,在指数相中生长的细胞用红色光谱点燃倾向于抵抗比细胞暴露在白色,绿色和黄光的更大程度上的照片。后者是因为植物苷允许从红光中更优异的波长吸收。相反,在固定阶段期间,在设备表面达到的强度,所有光谱的光强度在内生物反应器区域减小约80%。此外,对于所有光谱,细胞生长和植物生长和植物生长产生动力率倾向于接近零,考虑到内生物反应器区的50%以上。本研究中发现的该发现可能是设计新的光生物反应器的关键因素,使得通过安装旋转内部照明系统可以克服这些暗区以保证生物反应器的所有区域中的蓝细菌的光合作用过程,从而避免了避免现象由于低光强度导致的照片限制。

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