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Characterization of agitation environments in 250 ml spinner vessel, 3 L, and 20 L reactor vessels used for animal cell microcarrier culture

机译:用于动物细胞微载体培养的250 ml,3 L和20 L反应器容器中搅拌环境的表征

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Three dimensional particle tracking velocimetry (3-D PTV) was used to characterize the flow fields in the impeller region of three microcarrier reactor vessels. Three typical cell culture bioreactors were chosen: 250 ml small-scale spinner vessels, 3 L bench-scale reactor, and 20 L medium-scale reactor. Conditions studied correspond to the actual operating conditions in industrial setting and were determined based on the current scale-up paradigm: the Kolmogorov eddy length criterion. In this paper we present characterization of hydrodynamics on the basis of flow structures produced because of agitation. Flow structures were determined from 3-D mean velocity results obtained using 3-D PTV. Although the impellers used in 3 L and 20 L reactors were almost identical, the flow structures produced in the two reactors differed considerably. Results indicate that near geometric scale up does not necessarily amount to scale-up of flow patterns and indicates that intensity as well as distribution of energy may vary considerably during such a scale-up.
机译:三维粒子跟踪测速法(3-D PTV)用于表征三个微载体反应器容器的叶轮区域中的流场。选择了三种典型的细胞培养生物反应器:250 ml小型旋转容器,3 L台式反应器和20 L中型反应器。研究的条件与工业环境中的实际操作条件相对应,并且是根据当前的放大模型(Kolmogorov涡流长度准则)确定的。在本文中,我们基于搅拌产生的流动结构对流体动力学进行了表征。由使用3-D PTV获得的3-D平均速度结果确定流量结构。尽管在3升和20升反应器中使用的叶轮几乎相同,但两个反应器中产生的流动结构却有很大差异。结果表明,接近几何尺寸的放大并不一定等于流型的放大,并且表明强度和能量分布在这种放大期间可能会发生很大变化。

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