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Simulation of the dynamic packing behavior of preparative chromatography columns via discrete particle modeling

机译:离散色谱法模拟制备色谱柱的动态填充行为

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Preparative packed-bed chromatography using polymer-based, compressible, porous resins is a powerful method for purification of macromolecular bioproducts. During operation, a complex, hysteretic, thus, history-dependent packed bed behavior is often observed but theoretical understanding of the causes is limited. Therefore, a rigorous modeling approach of the chromatography column on the particle scale has been made which takes into account interparticle micromechanics and fluid-particle interactions for the first time. A three-dimensional deterministic model was created by applying Computational Fluid Dynamics (CFD) coupled with the Discrete Element Method (DEM). The column packing behavior during either flow or mechanical compression was investigated in-silico and in laboratory experiments. A pronounced axial compression-relaxation profile was identified that differed for both compression strategies. Void spaces were clearly visible in the packed bed after compression. It was assumed that the observed bed inhomogeneity was because of a force-chain network at the particle scale. The simulation satisfactorily reproduced the measured behavior regarding packing compression as well as pressure-flow dependency. Furthermore, the particle Young's modulus and particle-wall friction as well as interparticle friction were identified as crucial parameters affecting packing dynamics. It was concluded that compaction of the chromatographic bed is rather because of particle rearrangement than particle deformation. (c) 2015 American Institute of Chemical Engineers Biotechnol. Prog., 32:363-371, 2016
机译:使用基于聚合物的可压缩多孔树脂的填充床色谱是纯化大分子生物产品的有力方法。在操作过程中,经常观察到复杂的,滞后的,因此依赖于历史的填充床行为,但对原因的理论理解是有限的。因此,已经提出了一种在粒度上对色谱柱进行严格建模的方法,该方法首次考虑了颗粒间的微力学和流体-颗粒之间的相互作用。通过将计算流体动力学(CFD)与离散元方法(DEM)结合使用,创建了三维确定性模型。在硅胶和实验室实验中研究了流动或机械压缩过程中的色谱柱填充行为。确定了明显的轴向压缩松弛曲线,这两种压缩策略均不同。压缩后填充床中的空隙空间清晰可见。假定观察到的床不均匀性是由于在颗粒尺度上的力链网络。该模拟令人满意地重现了有关填料压缩以及压力-流量相关性的测量行为。此外,颗粒的杨氏模量和颗粒壁摩擦以及颗粒间的摩擦被确定为影响堆积动力学的关键参数。结论是,色谱床的压实是由于颗粒重排而不是颗粒变形。 (c)2015美国化学工程师学会生物技术学会。 Prog。,32:363-371,2016

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