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Ethylene glycol as bore fluid for hollow fiber membrane preparation

机译:乙二醇作为中空纤维膜制备的孔液

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摘要

We proposed the use of ethylene glycol and its mixture with water as bore fluid for the preparation of poly(ether imide) (PEI) hollow fiber membranes and compared their performance and morphology with membranes obtained with conventional coagulants (water and its mixture with the solvent N-methylpyrrolidone (NMP)). Thermodynamics and kinetics of the systems were investigated. Water and 1:1 water:EG mixtures lead to fast precipitation rates. Slow precipitation is observed for both pure EG and 9:1 NMP:water mixture, but the reasons for that are different. While low osmotic driving force leads to slow NMP and water transport when NMP:water is used, the high EG viscosity is the reason for the slow phase separation when EG is the bore fluid. The NMP:water mixture produces fibers with mixed sponge-like and finger-like structure with large pores in the inner and outer layers; and hence leading to a high water permeance and a high MWCO suitable for separation of large-sized proteins. As compared to NMP:water, using EG as bore fluid provides fibers with a finger-like bilayered structure and sponge-like layers near the surfaces, and hence contributing to the higher water permeance. It also induces small pores for better protein rejection.
机译:我们提出使用乙二醇及其混合物用水作为孔流体,用于制备聚(醚酰亚胺)(PEI)中空纤维膜,并将其性能和形态与用常规凝结剂(水及其与溶剂的混合物)获得的膜进行比较N-甲基吡咯烷酮(NMP))。研究了系统的热力学和动力学。水和1:1水:例如混合物导致快速沉淀速率。纯度为纯度和9:1 NMP:水混合物,但对其的原因不同,观察到缓慢的沉淀。虽然当使用NMP:使用水时,低渗透驱动力导致缓慢的NMP和水运输,但是当孔流体例如孔流体时,高EB的粘度是慢相分离的原因。 NMP:水混合物产生具有混合海绵状和指状结构的纤维,在内层和外层中具有大的孔;因此,通向高水渗透和适合分离大型蛋白质的高水合。与NMP:水相比,使用例如孔流体提供具有指状物的双层结构和在表面附近的海绵状层的纤维,因此有助于更高的水渗透。它还诱导小孔以获得更好的蛋白质排斥。

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