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Processing of Citrus Nanostructured Cellulose: A Rigorous Design-of-Experiment Study of the Hydrothermal Microwave-Assisted Selective Scissoring Process

机译:柑橘纳米结构纤维素的加工:一种严格的水热微波辅助选择性剪切过程的实验研究

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A detailed design-of-experiment (DoE) study to investigate the cause-effect interactions of three process variables, that is, temperature (120-200 degrees C), holding time (0-30 min), and concentration (1.4-5.0 wt%), on the processing of citrus cellulosic matter using acid-free microwave-assisted selective scissoring (Hy-MASS) is reported. Analysis of variance (ANOVA) showed that post-microwave processing, the yield of cellulosic matter (25-72%), decomposition temperature (345-373 degrees C), and crystallinity index (34-67%) were strongly affected by temperature. SEM and TEM analyses showed that the isolated cellulosic matter was heterogeneous and consisted of a mixture of micro- and nanofibers more akin to microfibrillated cellulose (MFC) at low processing temperatures and tending towards aggregated cellulose nanofibrils (CNFs) and cellulose nanocrystals (CNCs) at higher processing temperatures. The water holding capacity of the processed cellulosic matter (15-27 g H2O g(-1)) was higher than the original feedstock or previously reported values. The average molecular weight of the cellulosic matter (113.6-1095.9 kg mol(-1)) decreased significantly by a factor of 10 at operating temperatures above 180 degrees C, invoking significant scissoring of the cellulosic chains. The process energy input and costs varied between 0.142-0.624 kWh and 13-373 (sic) kg(-1), respectively, and strongly depended on the reaction time.
机译:详细的实验设计(DOE)研究,以研究三个过程变量的原因相互作用,即温度(120-200℃),保持时间(0-30分钟)和浓度(1.4-5.0据报道,WT%)报道了使用酸微波辅助选择性剪切(Hy质量)的柑橘纤维素物处理。方差分析(ANOVA)显示微波处理后,纤维素物质的产率(25-72%),分解温度(345-373℃)和结晶度指数(34-67%)受到温度的强烈影响。 SEM和TEM分析表明,分离的纤维素物质是异质的,并且由微纤维和纳米纤维的混合物组成,在低处理温度下,朝向聚集纤维素纳米纤维(CNFS)和纤维素纳米晶体(CNC)倾斜的微纤维和纳米纤维的混合物。更高的加工温度。加工纤维素物质的水持能力(15-27g H 2 O G(-1))高于原料或先前报道的值。纤维素物质的平均分子量(113.6-1095.9 kg mol(-1))在180℃以上的工作温度下显着降低10倍,调用纤维素链的显着铰接。过程能量输入和成本分别在0.142-0.624 kWh和13-373(SiC)kg(-1)之间变化,并强烈依赖于反应时间。

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