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A Study of the Coriolis Effect on the Fluid Flow Profile in a Centrifugal Bioreactor

机译:科里奥利效应对离心生物反应器中流体流动特性的影响

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Increasing demand for tissues,proteins,and antibodies derived from cell culture is necessitating the development and implementation of high cell density bioreactors. A system for studying high density culture is the centrifugal bioreactor (CCBR),which retains cells by increasing settling velocities through system rotation,thereby eliminating diffusional limitations associated with mechanical cell retention devices. This article focuses on the fluid mechanics of the CCBR system by considering Coriolis effects. Such considerations for centrifugal bioprocessing have heretofore been ignored; therefore,a simpler analysis of an empty chamber will be performed. Comparisons are made between numerical simulations and bromophenol blue dye injection experiments. For the non-rotating bioreactor with an inlet velocity of 4.3 cm/s,both the numerical and experimental results show the formation of a teardrop shaped plume of dye following streamlines through the reactor. However,as the reactor is rotated,the simulation predicts the development of vortices and a flow profile dominated by Coriolis forces resulting in the majority of flow up the leading wall of the reactor as dye initially enters the chamber,results are confirmed by experimental observations. As the reactor continues to fill with dye,the simulation predicts dye movement up both walls while experimental observations show the reactor fills with dye from the exit to the inlet. Differences between the simulation and experimental observations can be explained by excessive diffusion required for simulation convergence,and a slight density difference between dyed and un-dyed solutions. Implications of the results on practical bioreactor use are also discussed.
机译:对来自细胞培养的组织,蛋白质和抗体的需求不断增加,因此有必要开发和实施高细胞密度的生物反应器。用于研究高密度培养的系统是离心生物反应器(CCBR),它可以通过系统旋转来提高沉降速度来保留细胞,从而消除了与机械细胞保留装置相关的扩散限制。本文通过考虑科里奥利效应来重点研究CCBR系统的流体力学。迄今为止,对于离心生物处理的这种考虑被忽略了。因此,将对空腔进行更简单的分析。在数值模拟和溴酚蓝染料注射实验之间进行了比较。对于入口速度为4.3 cm / s的非旋转生物反应器,数值和实验结果均表明,流线通过反应器后,形成了水滴状的染料羽流。然而,随着反应器的旋转,模拟预测了涡旋的发展,并且由科里奥利力控制的流动曲线导致染料开始进入腔室时,大部分流向上反应器的前壁流动,结果被实验观察所证实。随着反应器继续充满染料,模拟预测了染料在两壁上的移动,而实验观察表明反应器从出口到入口都充满了染料。仿真和实验观察值之间的差异可以用仿真收敛所需的过度扩散以及染色和未染色溶液之间的微小密度差异来解释。还讨论了结果对实际生物反应器使用的影响。

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