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Optimization of spinning parameters on the fabrication of NH2-MIL-53(Al)/cellulose acetate (CA) hollow fiber mixed matrix membrane for CO2 separation

机译:NH2-MIL-53(Al)/醋酸纤维素(CA)中空纤维混合基质膜制备的纺丝参数优化用于CO2分离

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The attractive features of this work lies on the optimization of spinning parameters including, take-up speed and air-gap distance on the fabrication of NH2-MIL-53(Al)/CA Hollow fiber mixed matrix membranes (HFMMMs) for gases separation. The morphology and distribution of particles in the resultant HFMMMs were characterized by using FESEM and EDX mapping, respectively. FESEM images showed that the increase in take-up speed and air-gap distance reduced the outer diameters of HFMMMs from 275.5 mu m to 110.1 mu m and 719.1 mu m to 648.4 mu m, respectively. The gas permeation results exhibited that the permeance values were reduced and ideal selectivities were improved with the increment of take-up speed. Increasing trend of ideal selectivities could be because of progression of polymer orientation, packing and mono-disperse space which suppressed the non-selective voids and Knudsen pores in the HFMMMs. However, variation of air-gap distance produced "V" and "A" pattern for permeance and ideal selectivity values, respectively, for all HFMMMs spun at different take-up speeds. The HFMMM spun at optimum spinning condition at take up speed of 12.2 m/min and air gap distances of 5.0 cm showed the highest CO2/CH(4 )ideal selectivity of 16.0 and CO2/N-2 ideal selectivity of 12.0. Hence, optimization of spinning parameters can be considered as feasible and efficient method in order to fabricate HFMMMs with higher separation performance. The enhanced CO2 permeance and ideal selectivities demonstrated that NH2 MIL-53(Al)/CA HFMMM spun at optimum condition is potential for industrial gas separation.
机译:该作品的吸引力特征在于优化纺纱参数,包括用于制备NH2-MIL-53(Al)/ Ca中空纤维混合基质膜(HFMMM)的制备的卷取速度和空气间隙距离用于气体分离。通过使用FESEM和EDX映射,表征了所得HFMMMS中颗粒的形态和分布。 FESEM图像显示,增加速度和空气间隙距离的增加将HFMMM的外径分别从275.5μm至110.1μm和719.1μmm至648.4μm降低。气体渗透结果表明,渗透值降低,并随着卷取速度的增量而改善了理想的选择性。由于聚合物取向的进展,填充和单分散空间的进展,抑制了HFMMM中的非选择性空隙和Knudsen孔的进展,因此可能是由于高分子取向,包装和单分散空间的进展。然而,对于渗透速度的所有HFMMMS分别产生“V”和“V”和“A”模式的变化分别为渗透率和理想的选择性值。 HFMMM在最佳的纺丝条件下旋转12.2米/分钟的速度,5.0cm的空气间隙距离显示出最高的CO 2 / CH(4)的理想选择性16.0和CO2 / N-2的理想选择性12.0。因此,可以认为纺丝参数的优化是可行和有效的方法,以制造具有更高分离性能的HFMMM。增强的二氧化碳渗透性和理想选择性证明NH2 MIL-53(Al)/ CaHFmmmm在最佳条件下纺丝是工业气体分离的潜力。

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