Kaul A, Pereira R A, Asenjo J A, Merchuk J C
Biochemical Engineering Laboratory, The University of Reading, Reading, England.
Biotechnol Bioeng. 1995 Nov 5;48(3):246-56. doi: 10.1002/bit.260480311.
Phase separation times for polyethylene glycol (PEG)-4000-phosphate aqueous two-phase systems were studied, for small scale (5-g) and large scale (1300-g) systems, as a -function of the stability ratio. Profiles of dispersion height for both large and small scale systems were represented as a fraction of the initial height and were found to be independent of the geometrical dimensions of the separator. Furthermore, by plotting time as a fraction of the initial height the total time of separation can be calculated for a given height of system at a particular stability ratio. This generalization is important for the design of large scale aqueous two-phase separators. Phase separation times were also found to be dependent on which of the phases is continuous. A characteristic change in phase separation time was also observed at the phase inversion point (i.e., where the dispersed phase changes to a continuous phase and vice versa) and this point tends toward higher volume ratios as the tie-line length (TLL) is increased. Furthermore, the phase inversion point at each TLL corresponds to a fixed phosphate concentration.
研究了聚乙二醇(PEG)-4000-磷酸盐双水相体系在小规模(5克)和大规模(1300克)体系中的相分离时间,作为稳定性比的函数。大规模和小规模体系的分散高度曲线均表示为初始高度的分数,且发现其与分离器的几何尺寸无关。此外,通过将时间绘制成初始高度的分数,可以计算出在特定稳定性比下给定体系高度时的总分离时间。这种一般性结论对于大规模双水相分离器的设计很重要。还发现相分离时间取决于哪一相是连续相。在相转变点(即分散相变为连续相反之亦然的点)也观察到相分离时间的特征性变化,并且随着系线长度(TLL)增加,该点趋向于更高的体积比。此外,每个TLL处的相转变点对应于固定的磷酸盐浓度。