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Design and characterization of a scalable airlift flat panel photobioreactor for microalgae cultivation

机译:可扩展的气举平板光生物反应器用于微藻培养的设计与表征

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A novel flat panel photobioreactor prototype with bulk liquid flow driven by an external airlift was designed, modeled, and experimentally characterized for the purpose of developing scalable industrial photobioreactors. Baffles were built inside the flat panel part of the reactor, directing the liquid bulk flow in a serpentine way, and the external airlift drove the liquid flow and facilitated gas mass transfer. The gas holdup, liquid flow velocity, and oxygen mass transfer of this prototype were experimentally determined and mathematically modeled, and the performance of the reactor was tested by cultivating two species of microalgae, Scenedesmus obliquus and Chlorella sorokiniana. The model-predicted trends correlated well with experimental data, indicating that the reactor might be scaled up using these models. A high cell concentration of C. sorokiniana was achieved under controlled indoor cultivation conditions although serious biofouling occurred in the case of S. obliquus cultivation. The results favor the possibility of scaling up the reactor to industrial scales, based on the models employed, and the potential advantages and disadvantages of the reactor are discussed regarding this industry-oriented photobioreactor configuration in comparison with current industrial photobioreactors.
机译:为了开发可扩展的工业光生物反应器,设计,建模和实验表征了一种新颖的平板光生物反应器原型,该原型具有由外部气举驱动的大量液体流动。挡板内置在反应器的平板部分内,以蛇形方式引导液体的大量流动,外部气举推动液体流动并促进了气体质量的传递。实验确定了该原型的气体滞留量,液体流速和氧气质量传递,并对其进行了数学建模,并通过培养两种微藻(斜生藻和小球藻)来测试反应器的性能。该模型预测的趋势与实验数据很好地相关,表明使用这些模型可以扩大反应堆的规模。尽管在斜纹葡萄球菌培养中发生了严重的生物污染,但在受控的室内培养条件下仍实现了高细胞浓度的梭菌。结果基于所采用的模型,有利于将反应器规模扩大到工业规模,并且与当前的工业光生物反应器相比,讨论了关于该工业导向的光生物反应器配置的反应器的潜在优缺点。

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