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Sonosynthesis of Microcellulose from Kenaf Fiber: Optimization of Process Parameters

机译:洋麻纤维超声合成纤维素:工艺参数的优化

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摘要

Green composites using cellulose fibers as a reinforcement material provide a sustainable and renewable alternative to petroleum-based polymers. However, controlling the usage of chemicals and processing parameters to extract the cellulose could be sometimes difficult. Therefore, this study aims to optimize the conditions for extracting the microcellulose from kenaf fibers using central composite design (CCD), a statistical tool in design of experiments. Three factors and three levels were chosen for carrying out the analysis. The design was based on sodium hydroxide (NaOH) dosage, Sodium Chlorite (NaClO2) dosage and sonication time as independent variables, while dependent variables were the fiber size and degradation point. Later, size responses were fitted using quadratic polynomial model and degradation responses using 2-factor interaction model (2FI). The R-2 values of 0.89 and 0.83 were obtained for the quadratic and the 2FI model, respectively. Further, surface morphology, thermal analysis, Fourier transform infrared (FTIR) spectroscopy and X-Ray diffraction (XRD) were also used for design validation. Optimal parameters for microcellulose extraction were found to be 0.15g of NaOH at first stage, 4.6mL of NaClO2 at second stage, and 10min of sonication during third stage.
机译:使用纤维素纤维作为增强材料的绿色复合材料为石油基聚合物提供了可持续和可再生的替代品。但是,有时可能很难控制化学品的使用和处理参数以提取纤维素。因此,本研究旨在优化使用中央复合设计(CCD)(实验设计中的统计工具)从洋麻纤维中提取微纤维素的条件。选择了三个因素和三个层次进行分析。该设计基于氢氧化钠(NaOH)剂量,亚氯酸钠(NaClO2)剂量和超声处理时间作为自变量,而因变量是纤维尺寸和降解点。之后,使用二次多项式模型拟合尺寸响应,并使用2因子相互作用模型(2FI)拟合退化响应。二次模型和2FI模型的R-2值分别为0.89和0.83。此外,表面形态,热分析,傅立叶变换红外(FTIR)光谱和X射线衍射(XRD)也用于设计验证。发现用于微纤维素提取的最佳参数是,第一阶段为0.15g NaOH,第二阶段为4.6mL NaClO2,第三阶段为超声处理10min。

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