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The Effects of Engineering Design on Heterogeneous Biocatalysis in Microchannels

机译:工程设计对微通道内非均相生物催化的影响

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The results of a numerical study of the fundamental interactions of engineering design and micromixing on conversion in packed microchannels are presented. Previously, channel-based microreactors made of molded silicon plastic were designed, fabricated, and experimentally tested. These reactors have enzymes immobilized on the channel walls by various methods including layer-by-layer nano self-assembly techniques. They also contain molded packing features to add reactive surface area and to redistribute the fluid. An arbitrary but intuitively sensible packing arrangement was initially chosen and used in experimental studies. The current computer simulation study was undertaken to understand how static laminar mixing affects the conversion efficiency. The reactors previously used experimentally have been simulated using CFD-ACE+ multiphysics software (ESI CFD Inc., Huntsville, AL). It is found that packing significantly increases conversion when compared with empty channels over the entire flow rate range of the study (0.25 < Re< 62.5). The boost in conversion has an optimal point near Re = 20 for the particular geometry examined.
机译:提出了对工程设计和微混合在填充微通道中转化的基本相互作用进行数值研究的结果。以前,设计,制造和实验测试了由模制硅塑料制成的基于通道的微反应器。这些反应器具有通过各种方法固定在通道壁上的酶,这些方法包括逐层纳米自组装技术。它们还包含模压填料特征,以增加反应表面积并重新分配流体。最初选择了一种随意但直观的包装方法,并将其用于实验研究中。进行当前的计算机模拟研究是为了了解静态层流混合如何影响转化效率。先前实验性使用的反应器已使用CFD-ACE +多物理场软件(ESI CFD Inc.,美国亨茨维尔,AL)进行了模拟。发现在整个研究流量范围内,与空通道相比,填料显着提高了转化率(0.25

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