Effect of Solvent Evaporation Time and Casting Thickness on the Separation Performance of Cellulose Acetate Butyrate Blend Membrane

D. Manimaran, Z. Jawad, C. Leng
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Abstract

Global warming and climate change due to greenhouse gases (GHGs) emission, mostly carbon dioxide (CO2), have induced global efforts to minimize the concentration of atmospheric CO2. To reduce the effects of this problem, membrane technology is selected for the separation of CO2 due to the energy efficiency and economic advantages exhibited. In this study, the chosen polymeric material, cellulose acetate butyrate (CAB) is optimized using a wet phase inversion method with various molecular weight and different casting conditions due to its outstanding film-forming specifications and capabilities of fabricating a defect-free layer of neat membrane. The membrane was synthesized by blending three different molecular weights (Mn) of 12,000, 30,000 and 70,000 at different casting thickness, 150 µm to 300 µm and solvent evaporation time of 3.5 to 5 min. The results of these predominant parameters were then utilized to determine a high performance CAB membrane suitable for an enhanced CO2/Nitrogen (N2) separation. Eventually, a high separation performance CAB membrane was successfully synthesized with a CO2/N2 selectivity of 1.5819 ± 0.0775 when the solvent evaporation time and casting thickness was optimized at 4.5 min and 300 µm, respectively. Through this study, an improved understanding between membrane casting conditions and membrane performance has been achieved, for future development and progress.
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溶剂蒸发时间和浇铸厚度对醋酸丁酸纤维素共混膜分离性能的影响
由于温室气体(ghg)排放,主要是二氧化碳(CO2),导致全球变暖和气候变化,促使全球努力尽量减少大气中二氧化碳的浓度。为了减少这一问题的影响,由于膜技术具有能效和经济优势,因此选择膜技术进行CO2分离。在本研究中,选用的聚合物材料醋酸丁酸纤维素(CAB)由于其优异的成膜性能和制造无缺陷的整齐膜层的能力,采用湿相转化法对其进行了优化,该材料具有不同分子量和不同铸造条件。在铸造厚度为150µm ~ 300µm,溶剂蒸发时间为3.5 ~ 5 min的条件下,将分子量为12000、30000和70000的三种不同分子量(Mn)混合,合成了一种适合于CO2/氮气(N2)强化分离的高性能CAB膜。最终,在溶剂蒸发时间为4.5 min、浇铸厚度为300µm的条件下,成功合成了CO2/N2选择性为1.5819±0.0775的高分离性能CAB膜。通过本研究,提高了对膜铸造工艺条件与膜性能之间关系的认识,为今后的发展和进步奠定了基础。
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