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2~3 fractional factorial design for polymer based thin film composite(TFC)membrane synthesis for CO2/CH4 separation

机译:用于CO2/CH4分离的聚合物基薄膜复合材料(TFC)膜合成的2~3分数析因设计

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Membrane technology is dominating the industry as an attractive approach for biogas purification due to its outstanding performance.Recently,there have been intensive efforts in the development of better separation efficiency of membrane which include altering the materials and modifying the methods in preparing the membrane.A well-formed membrane is when they achieved both high permeability and excellent separation ability.Therefore,this study is focusing on identifying the best processing factors in PVC/Pebax thin film composite(TFC)membrane development towards CO2/CH4 separation by employing 23 fractional factorial design(FFD).A total of three factors; immersion times(5 & 15 min),Pebax concentration(1 & 5 wt%)and number of coating layers(1 & 4)were chosen to run simultaneously with CO2 permeability and ideal selectivity as the responses for this study.The results show that the most influential factors that affect the permeability are immersion time and Pebax concentration,while for selectivity are Pebax concentration and number of coating layer.The best condition was known to maximize the permeability and selectivity.The identified conditions were immersion time for 15 min,Pebax concentration at 5wt% and 4 layers of coating which gave CO2 permeability and gas selectivity of 19612 Barrer and 7.15,respectively.The outcome of this study indicates that FFD was suitable to minimize and eliminate factors by considering the interaction among the factors involves in membrane film synthesis for excellent gas separation performance.Besides,the existence of Pebax layer was verified by visual interpretation using Scanning electron microscopy(SEM)and Fourier Transform Infrared(FTIR).
机译:膜技术因其优异的性能而成为沼气净化领域的一种极具吸引力的方法。近年来,人们一直在努力开发更好的膜分离效率,包括改变膜的材料和制备方法。当它们达到高渗透性和优异的分离能力时,形成良好的膜。因此,本研究采用23-分数析因设计(FFD)确定PVC/Pebax薄膜复合(TFC)膜向CO2/CH4分离方向发展的最佳工艺因素。共有三个因素;选择浸泡时间(5和15分钟)、Pebax浓度(1和5 wt%)和涂层数量(1和4)与CO2渗透性和理想选择性同时运行作为本研究的响应。结果表明,影响渗透性的最主要因素是浸泡时间和Pebax浓度,而影响选择性的因素是Pebax浓度和涂层数。已知最佳条件是使渗透性和选择性最大化。确定的条件是浸泡15分钟,Pebax浓度为5wt%,以及4层涂层,其CO2渗透性和气体选择性分别为19612巴和7.15巴。研究结果表明,考虑到膜合成过程中各因素之间的相互作用,FFD适合最小化和消除因素,从而获得优异的气体分离性能。此外,通过扫描电子显微镜(SEM)和傅里叶变换红外光谱(FTIR)的目视判读验证了Pebax层的存在。

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