首页> 外文期刊>Journal of Chemical Engineering of Japan >A Numerical Model for the Quantification of Light/Dark Cycles in Microalgal Cultures: Air-Lift and Bubble-Column Photobioreactor Analysis by Means of Computational Fluid Dynamics
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A Numerical Model for the Quantification of Light/Dark Cycles in Microalgal Cultures: Air-Lift and Bubble-Column Photobioreactor Analysis by Means of Computational Fluid Dynamics

机译:微藻培养中光/暗循环定量化的数值模型:通过计算流体动力学分析的气举和气泡柱光生物反应器

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References(32) Vertical photobioreactors (PBR) with cylindrical cross section, namely air-lift reactors (ALR) and bubble column reactors (BCR), are often chosen both for bench-scale and industrial scale microalgal cultivation. It was common belief that ALR was the most favorable configuration in terms of light conversion efficiency (LCE) and/or photosynthetic productivity than BCR because of the regular cyclic flow pattern achieved inside the PBR. In the present study, we simulated the flow patterns in both ALR and BCR by means of computational fluid dynamics (CFD) and clarified the effects of such flow pattern on the LCE and productivity. Simulation results, obtained from the open-source CFD suite OpenFOAM, showed good agreement both for the flow velocity and the mixing time observed in the actual PBR using high-speed photography and conductivity pulse response, respectively. Subsequently, Lagrangian particle tracking was conducted on the simulation results to highlight the main fluid-flow patterns and to calculate the local flashing-light frequency, which was necessary in order to estimate the overall light conversion efficiency of the PBR. The BCR was characterized by a highly random fluid pattern with macroscopic, low-frequency circular loops while the ALR was characterized by numerous swirling flows localized inside the draft tube in addition to the main recirculation between the inner and outer portions of the tube. Finally, image analysis was used to correlate the numerical calculations with the light conversion efficiencies attained in a Haematococcus pluvialis culture that had been illuminated with flashing light.
机译:参考文献(32)具有台式横截面的垂直光生物反应器(PBR),即气举反应器(ALR)和鼓泡塔反应器(BCR),通常被选择用于台式规模和工业规模的微藻培养。人们普遍认为,在光转换效率(LCE)和/或光合生产力方面,ALR是最有利的配置,这是因为PBR内部实现了规则的循环流动模式。在本研究中,我们通过计算流体动力学(CFD)来模拟ALR和BCR中的流态,并阐明了这种流态对LCE和生产率的影响。从开源CFD套件OpenFOAM获得的仿真结果显示,分别使用高速摄影和电导率脉冲响应,在实际PBR中观察到的流速和混合时间都具有良好的一致性。随后,对模拟结果进行了拉格朗日粒子跟踪,以突出显示主要流体流动模式并计算局部闪光频率,这对于估算PBR的整体光转换效率是必需的。 BCR的特征是具有宏观,低频圆形回路的高度随机流体模式,而ALR的特征是除在管的内部和外部之间的主要再循环外,在引流管内部还存在大量旋流。最后,使用图像分析将数值计算与在用闪光灯照明的雨生红球菌培养物中获得的光转换效率相关联。

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