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Optimization of membrane performance by thermal-mechanical stretching process using responses surface methodology(RSM)

机译:使用响应表面方法(RSM)通过热机械拉伸工艺优化膜性能

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摘要

Thermal-mechanical stretching process was proposed to modify membrane morphology for enhancing membrane performances.In this study,Response Surface Methodology(RSM)was used to achieve satisfactory responses of lateral flow membrane performances.The factors considered in this study were the stretching elongation(4-22% of the total membrane sample's length),stretching speed(0.04-0.1 mm/s)and stretching temperature(25-75 °C).The response variables included the lateral flow membrane performances in terms of porosity,lateral wicking time and protein binding ability.These responses were presented graphically based on the central composite design(CCD)of RSM.Atomic Force Microscope(AFM),Field Emission Scanning Electron Microscopy(FESEM)and statistical analysis showed that all the three stretching factors significantly affected the final membrane structures and performances.The optimum stretching elongation of membrane was found to be at 18% with the stretching rate and temperature of 0.07 mm/s and 35 °C respectively.This optimum stretching condition is proven to have high membrane porosity(78.63%),high protein binding ability(4496.5 mu g/cm~3)and fast lateral wicking rate(579.0 s/4 cm)where deviation between predicted and actual responses fell within 5%.
机译:提出了热机械拉伸工艺来改变膜的形态,以提高膜的性能。在这项研究中,使用响应表面方法(RSM)来获得令人满意的侧向流动膜性能的响应。本研究中考虑的因素是拉伸伸长率(4)。膜总长度的-22%),拉伸速度(0.04-0.1 mm / s)和拉伸温度(25-75°C)。响应变量包括侧向流动膜性能,包括孔隙率,侧向芯吸时间和这些反应是基于RSM的中心复合设计(CCD),原子力显微镜(AFM),场发射扫描电子显微镜(FESEM)进行图形化表示的,并且统计分析表明所有三个拉伸因子均显着影响最终蛋白的结合能力。膜的结构和性能。发现膜的最佳拉伸伸长率为18%,拉伸速率和温度为0.07 mm / s最佳的拉伸条件被证明具有高的膜孔隙率(78.63%),高的蛋白结合能力(4496.5μg / cm〜3)和快速的横向芯吸率(579.0 s / 4 cm)预测和实际响应均在5%以内。

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