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表征不同几何尺寸的圆柱形轨道摇床生物反应器流场中的流体动力学。

Characterizing the fluid dynamics in the flow fields of cylindrical orbitally shaken bioreactors with different geometry sizes.

作者信息

Zhu Likuan, Han Wang, Song Boyan, Wang Zhenlong

机构信息

School of Mechatronics Engineering Harbin Institute of Technology Harbin Heilongjiang P. R. China.

出版信息

Eng Life Sci. 2018 May 14;18(8):570-578. doi: 10.1002/elsc.201700170. eCollection 2018 Aug.

Abstract

Orbitally shaken bioreactors (OSRs) are commonly used for the cultivation of mammalian cells in suspension. To aid the geometry designing and optimizing of OSRs, we conducted a three-dimensional computational fluid dynamics (CFD) simulation to characterize the flow fields in a 10 L cylindrical OSR with different vessel diameters. The liquid wave shape captured by a camera experimentally validated the CFD models established for the cylindrical OSR. The geometry size effect on volumetric mass transfer coefficient () and hydromechanical stress was analyzed by varying the ratio of vessel diameter () to liquid height at static ( ), The highest value of about 30 h was observed in the cylindrical vessel with the of 6.35. Moreover, the magnitudes of shear stress and energy dissipation rate in all the vessels tested were below their minimum values causing cells damage separately, which indicated that the hydromechanical-stress environment in OSRs is suitable for cells cultivation in suspension. Finally, the CFD results suggested that the higher than 8.80 should not be adopted for the 10 L cylindrical OSR at the shaking speed of 180 rpm because the "out of phase" state probably will happen there.

摘要

轨道摇床生物反应器(OSR)通常用于悬浮培养哺乳动物细胞。为了辅助OSR的几何设计和优化,我们进行了三维计算流体动力学(CFD)模拟,以表征不同容器直径的10 L圆柱形OSR中的流场。通过实验,相机捕捉到的液体波形验证了为圆柱形OSR建立的CFD模型。通过改变静态时容器直径()与液体高度的比值(),分析了几何尺寸对体积传质系数()和流体力学应力的影响。在直径与高度比值为6.35的圆柱形容器中,观察到约30 h的最高值。此外,所有测试容器中的剪切应力和能量耗散率大小均分别低于其导致细胞损伤的最小值,这表明OSR中的流体力学应力环境适合悬浮细胞培养。最后,CFD结果表明,对于10 L圆柱形OSR,在180 rpm的振荡速度下,不应采用高于8.80的比值,因为可能会出现“异相”状态。

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Orbitally shaken single-use bioreactors.轨道震荡式一次性生物反应器。
Adv Biochem Eng Biotechnol. 2014;138:45-60. doi: 10.1007/10_2013_188.

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