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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Modelling and numerical simulation of liquid-solid circulating fluidized bed system for protein purification
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Modelling and numerical simulation of liquid-solid circulating fluidized bed system for protein purification

机译:用于蛋白质纯化的液固循环流化床系统的建模与数值模拟

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摘要

A novel liquid-solid circulating fluidized bed (LSCFB) was modelled for protein recovery from the feed broth. A typical LSCFB system consists of downer and riser, integrating two different operations simultaneously. A general purpose, extensible, and dynamic model was written based on the tanks-in-series framework. The model allowed adjusting the degree of backmixing in each phase for both columns. The model was validated with previously published data on extraction of bovine serum albumin (BSA) as model protein. Detailed dynamic analysis was performed on the protein recovery operation. The interaction between the riser and downer were captured. Parametric studies on protein recovery in LSCFB system were carried out using the validated model to better understand the system behaviour. Simulation results have shown that both production rate and overall recovery increased with solids circulation rate, superficial liquid velocity in the downer and riser, and feed solution concentration. The model was flexible and could use various forms of ion exchange kinetics and could simulate different hydrodynamic behaviours. It was useful to gain insight into protein recovery processes. The general nature of the model made it useful to study other protein recovery operations for plant and animal proteins. It could also be useful for further multi-objective optimization studies to optimize the LSCFB system.
机译:建立了新型液固循环流化床(LSCFB),用于从饲料中回收蛋白质。典型的LSCFB系统由下降器和上升器组成,同时集成了两种不同的操作。基于串联坦克框架编写了通用,可扩展的动态模型。该模型允许调整两列每个阶段的回混程度。该模型已用先前发表的有关提取牛血清白蛋白(BSA)作为模型蛋白的数据进行了验证。对蛋白质回收操作进行了详细的动态分析。上升器和下降器之间的相互作用被捕获。使用已验证的模型对LSCFB系统中的蛋白质回收率进行了参数研究,以更好地了解系统行为。模拟结果表明,生产率和总回收率均随固体循环率,下降器和上升器中的表观液体速度以及进料溶液浓度的增加而增加。该模型非常灵活,可以使用各种形式的离子交换动力学,并且可以模拟不同的流体动力学行为。深入了解蛋白质回收过程非常有用。该模型的一般性质使其对于研究植物和动物蛋白的其他蛋白回收操作非常有用。这对于进一步优化LSCFB系统的多目标优化研究也可能是有用的。

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