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Modelling The Transport Of Momentum And Oxygen In An Aerial-Disk Driven Bioreactor Used For Animal Tissue Or Cell Culture

机译:在用于动物组织或细胞培养的空中磁盘驱动的生物反应器中建模动量和氧气运输

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This study considers the momentum transport and oxygen transfer in a modified stirred tank bioreactor. The design is novel in the sense that the impeller is positioned above the culture medium (instead of being suspended inside it). This design has potential benefits of enhanced gas transfer, reduced possibility of contamination, and better access to the culture medium. Computational fluid dynamics modelling is used to simulate the gas and fluid flow in the bioreactor. A rotation rate of 60 to 240 rpm (corresponding to the laminar regime) was adopted. Results show that the flow in the medium is swirl-dominant with an induced secondary flow in the meridional plane consisting of a steady and robust recirculation bubble. As the Reynolds number is increased beyond ~427, we observe the formation of an additional smaller toroidal-bubble at the bottom wall. This bubble bears some resemblance to the vortex breakdown topology commonly found in confined swirling flows. In terms of the oxygen distribution, oxygen transfer from the gaseous phase into the culture medium is enhanced through forced diffusion taking place across the air-medium interface. For the Reynolds number range studied there is clear dominance of convection over diffusion in the transport of oxygen from the air-medium interface and throughout the culture medium.
机译:本研究考虑了改性搅拌釜生物反应器中的动量运输和氧气转移。设计是新颖的,因为叶轮位于培养基上方(而不是悬挂在它内)。这种设计具有增强的气体转移,减少污染的可能性以及更好地获得培养基的潜在好处。计算流体动力学建模用于模拟生物反应器中的气体和流体流动。采用60至240rpm的旋转速率(对应于层状制度)。结果表明,介质中的流动是由稳定且稳健的再循环泡的子午线中的诱导的二次流动的旋涡显性。随着雷诺数的增加超过〜427,我们观察到底壁的额外较小环形气泡的形成。这种泡沫与在狭窄的旋流中常见的涡流细分拓扑中有一些相似之处。就氧气分布而言,通过穿过空气介质界面的强制扩散来增强来自气相进入培养基的氧气转移。对于Reynolds的数量范围,研究了在空中介质界面和整个培养基中传输氧气传播中的对流的明显优势。

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