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首页> 外文期刊>Biotechnology Progress >Spectral Kinetic Modeling and Long-Term Behavior Assessment of Arthrospira platensis Growth in Photobioreactor Under Red(620 nm)Light Illumination
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Spectral Kinetic Modeling and Long-Term Behavior Assessment of Arthrospira platensis Growth in Photobioreactor Under Red(620 nm)Light Illumination

机译:在红色(620 nm)光照下光生物反应器中节肢螺旋藻生长的光谱动力学建模和长期行为评估

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The ability to cultivate the cyanobacterium Arhtrospira platensis in artificially lightened photobioreactors using high energetic efficiency(quasi-monochromatic)red LED was investigated.To reach the same maximal productivities as with the polychromatic lightening control conditions(red + blue,P/2e~- = 1.275),the need to work with an optimal range of wavelength around 620 nm was first established on batch and continuous cultures.The long-term physiological and kinetic behavior was then verified in a continuous photobioreactor illuminated only with red(620 nm)LED,showing that the maximum productivities can be maintained over 30 residence times with only minor changes in the pigment content of the cells corresponding to a well-known adaptation mechanism of the photosystems,but without any effect on growth and stoichiometry.For both poly and monochromatic incident light inputs,a predictive spectral knowledge model was proposed and validated for the first time,allowing the calculation of the kinetics and stoichiometry observed in any photobioreactor cultivating A.platensis,or other cyanobacteria if the parameters were updated.It is shown that the photon flux(with a specified wavelength)must be used instead of light energy flux as a relevant control variable for the growth.The experimental and theoretical results obtained in this study demonstrate that it is possible to save the energy consumed by the lightening device of photobioreactors using red LED,the spectral range of which is defined according to the action spectrum of photosynthesis.This appears to be crucial information for applications in which the energy must be rationalized,as it is the case for life support systems in closed environments like a permanent spatial base or a submarine.
机译:研究了利用高能效(准单色)红色LED在人工增亮的光生物反应器中培养蓝藻的能力,以达到与多色增亮控制条件(红色+蓝色,P / 2e〜-= 1.275),首先需要在分批和连续培养中确定在620 nm附近的最佳波长范围工作。然后在仅用红色(620 nm)LED照明的连续光生物反应器中验证了其长期的生理和动力学行为,表明在30个停留时间内可以保持最高生产率,而细胞中色素含量的微小变化与光系统的众所周知的适应机制相对应,但对生长和化学计量没有任何影响。光输入,首次提出并验证了预测光谱知识模型,从而可以计算出如果更新了参数,则在任何培养平板锥虫或其他蓝细菌的光生物反应器中观察到的动力学和化学计量学都表明,必须使用(具有指定波长的)光子通量代替光能通量作为该传感器的相关控制变量。这项研究获得的实验和理论结果表明,使用红色LED可以节省光生物反应器的减光装置消耗的能量,其光谱范围是根据光合作用的作用光谱来定义的。对于必须合理化能源的应用而言至关重要的信息,例如在永久性空间基地或潜艇等封闭环境中的生命支持系统就是这种情况。

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