Department of Biotechnology, Lund University, PO Box 124, SE-22100 Lund, Sweden.
J Chromatogr A. 2011 Aug 12;1218(32):5487-97. doi: 10.1016/j.chroma.2011.06.056. Epub 2011 Jun 22.
A capillary-based model modified for characterization of monolithic cryogels is presented with key parameters like the pore size distribution, the tortuosity and the skeleton thickness employed for describing the porous structure characteristics of a cryogel matrix. Laminar flow, liquid dispersion and mass transfer in each capillary are considered and the model is solved numerically by the finite difference method. As examples, two poly(hydroxyethyl methacrylate) (pHEMA) based cryogel beds have been prepared by radical cryo-copolymerization of monomers and used to test the model. The axial dispersion behaviors, the pressure drop vs. flow rate performance as well as the non-adsorption breakthrough curves of different proteins, i.e., lysozyme, bovine serum albumin (BSA) and concanavalin A (Con A), at various flow velocities in the cryogel beds are measured experimentally. The lumped parameters in the model are determined by matching the model prediction with the experimental data. The results showed that for a given cryogel column, by using the model based on the physical properties of the cryogel (i.e., diameter, length, porosity, and permeability) together with the protein breakthrough curves one can obtain a reasonable estimate and detailed characterization of the porous structure properties of cryogel matrix, particularly regarding the number of capillaries, the capillary tortuousness, the pore size distribution and the skeleton thickness. The model is also effective with regards to predicting the flow performance and the non-adsorption breakthrough profiles of proteins at different flow velocities. It is thus expected to be applicable for characterizing the properties of cryogels and predicting the chromatographic performance under a given set of operating conditions.
提出了一种基于毛细管的模型,用于对整体式冷冻凝胶进行特性描述,其中使用了孔径分布、迂曲度和骨架厚度等关键参数来描述冷冻凝胶基质的多孔结构特征。考虑了每个毛细管中的层流、液体分散和质量传递,并且通过有限差分法对模型进行了数值求解。作为示例,通过单体的自由基冷冻共聚制备了两种聚(羟乙基甲基丙烯酸酯)(pHEMA)基冷冻凝胶床,并用于测试模型。在冷冻凝胶床中,在不同的流速下,实验测量了不同蛋白质(即溶菌酶、牛血清白蛋白(BSA)和伴刀豆球蛋白 A(Con A))的轴向扩散行为、压降与流速关系以及非吸附突破曲线。模型中的集中参数通过将模型预测与实验数据匹配来确定。结果表明,对于给定的冷冻凝胶柱,通过使用基于冷冻凝胶物理性质(即直径、长度、孔隙率和渗透率)的模型以及蛋白质突破曲线,可以对冷冻凝胶基质的多孔结构性质进行合理估计和详细描述,特别是关于毛细管数量、毛细管迂曲度、孔径分布和骨架厚度。该模型对于预测不同流速下的流动性能和非吸附突破曲线也非常有效。因此,预计它适用于在给定的操作条件下对冷冻凝胶的特性进行表征和对色谱性能进行预测。