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首页> 外文期刊>Biotechnology Progress >Using CFD simulations and statistical analysis to correlate oxygen mass transfer coefficient to both geometrical parameters and operating conditions in a stirred‐tank bioreactor
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Using CFD simulations and statistical analysis to correlate oxygen mass transfer coefficient to both geometrical parameters and operating conditions in a stirred‐tank bioreactor

机译:使用CFD仿真和统计分析将氧气传质系数与搅拌罐生物反应器中的几何参数和操作条件相关联

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摘要

> Optimization of a bioreactor design can be an especially challenging process. For instance, testing different bioreactor vessel geometries and different impeller and sparger types, locations, and dimensions can lead to an exceedingly large number of configurations and necessary experiments. Computational fluid dynamics (CFD), therefore, has been widely used to model multiphase flow in stirred‐tank bioreactors to minimize the number of optimization experiments. In this study, a multiphase CFD model with population balance equations are used to model gas–liquid mixing, as well as gas bubble distribution, in a 50?L single‐use bioreactor vessel. The vessel is the larger chamber in an early prototype of a multichamber bioreactor for mammalian cell culture. The model results are validated with oxygen mass transfer coefficient ( k L a ) measurements within the prototype. The validated model is projected to predict the effect of using ring or pipe spargers of different sizes and the effect of varying the impeller diameter on k L a . The simulations show that ring spargers result in a superior k L a compared to pipe spargers, with an optimum sparger‐to‐impeller diameter ratio of 0.8. In addition, larger impellers are shown to improve k L a . A correlation of k L a is presented as a function of both the reactor geometry (i.e., sparger‐to‐impeller diameter ratio and impeller‐to‐vessel diameter ratio) and operating conditions (i.e., Reynolds number and gas flow rate). The resulting correlation can be used to predict k L a in a bioreactor and to optimize its design, geometry, and operating conditions.
机译: > 生物反应器设计的优化可以是一个特别具有挑战性的过程。例如,测试不同的生物反应器血管几何形状和不同的叶轮和喷射器类型,位置和尺寸可以导致超过大量的配置和必要的实验。因此,计算流体动力学(CFD)已被广泛用于在搅拌罐生物反应器中模拟多相流动,以最小化优化实验的数量。在该研究中,具有百种人口平衡方程的多相CFD模型用于在50μl单用生物反应器容器中模拟气液混合,以及气泡分布。该容器是哺乳动物细胞培养物的多巯基生物反应器的早期原型中的较大腔室。模型结果用氧气传质系数验证( k l a )原型内的测量值。预计验证的型号以预测使用不同尺寸的环或管道辐射器的效果和改变叶轮直径的效果 k l a 。模拟表明,环旋风器会导致优越的 k l a 与管道辐射器相比,具有0.8的最佳细长叶轮直径比。此外,较大的叶轮显示出改善 k l a 。相关的相关性 k l a 作为反应器几何形状(即,Pabarger-to-verler直径比和叶轮到容器直径比)和操作条件(即,雷诺数和气体流速)的函数。得到的相关性可以用来预测 k l a 在生物反应器中,优化其设计,几何形状和操作条件。

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