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Formation and characterization of asymmetric nanofiltration membrane: Effect of shear rate and polymer concentration

机译:不对称纳滤膜的形成与表征:剪切速率和聚合物浓度的影响

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In this study, we report the effects of shear rates and polymer concentrations in the formation of asymmetric nanofiltration membrane using a simple dry/wet phase inversion technique. Employing the combination of irreversible thermodynamic model, solution-diffusion model (Spiegler-Kedem equation), steric-hindrance pore (SHP) model and Teorell-Meyers (TMS) model, the transport mechanisms and membrane structural properties were determined and have been characterized for different cases of those formation parameters. The experimental and modeling showed very promising results in terms of membrane performance with interesting structural details. The optimum shear rate (critical shear rate) was found to be at about 203.20 s~(-1) and the best polymer concentration toward the formation of high performance nanofiltration membrane is in the range of 19.60-23.10%. The modeling results suggested that the pore radius of the membranes produced lies within the range of pore radius of 29 commercial available membranes. This study also proposed that the electrolytes transport through nanofiltration membrane was dominated by a convection factor which accounted approximately 30% more than a diffusion factor. This study also indicated that shear rate and polymer concentration were found to affect the membrane performance and structural properties by providing, to a certain extent, an oriented membrane skin layer which in turn exhibiting an improvement in membrane separation ability.
机译:在这项研究中,我们报告了使用简单的干/湿相转化技术在不对称纳滤膜形成过程中剪切速率和聚合物浓度的影响。利用不可逆热力学模型,溶液扩散模型(Spiegler-Kedem方程),空间阻滞孔(SHP)模型和Teorell-Meyers(TMS)模型,确定了传输机理和膜结构特性,并对其进行了表征。这些构造参数的不同情况。实验和建模在膜性能方面显示出非常令人鼓舞的结果,并具有有趣的结构细节。发现最佳剪切速率(临界剪切速率)为约203.20 s·(-1),并且朝向形成高性能纳滤膜的最佳聚合物浓度为19.60-23.10%。模拟结果表明,所生产的膜的孔半径在29种市售膜的孔半径范围内。该研究还提出,电解质通过纳滤膜的传输主要由对流因子决定,对流因子比扩散因子多约30%。该研究还表明,发现剪切速率和聚合物浓度通过在一定程度上提供取向的膜皮层而影响膜的性能和结构性质,而该取向的皮层又表现出膜分离能力的改善。

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