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Enzyme Degradability of Benzylated Sisal and its Self-reinforced Composites

机译:剑麻剑麻及其自增强复合材料的酶降解性能

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摘要

To produce natural polymer based composite materials, sisal fibers lucre slightly benzylated and then molded into sheets. Because the modified skin portions of the fibers acquired certain thermoplasticity and the unmodified core parts remain constant, the resultant composites fall into the category of self-reinforced ones. The present article is devoted to the evaluation of the materials biodegradability with the help of cellulase. It was found that the inherent biodegradability of plant fibers is still associated with the benzylated sisal and the molded composites, as characterized by structural variation, weight loss and deterioration of mechanical performance of the materials. Reaction temperature and time, pH value of the enzyme solution, and dosage of the enzyme had significant influences on the decomposition behavior of the materials. In principle, the enzymolysis of sisal and its self-reinforced composites is a diffusion-controlled process. Due to the insusceptibility of lignin to cellulase and the hindrance of it to the cellulase solution, the degradation rates of the materials are gradually slowed down with an increase in time.
机译:为了生产基于天然聚合物的复合材料,剑麻纤维会略微被苄基化,然后模制成片。由于纤维的改性表层部分具有一定的热塑性,而未改性的芯部分保持恒定,因此所得复合材料属于自增强复合材料的类别。本文致力于借助纤维素酶评估材料的生物降解性。已发现,植物纤维固有的生物降解性仍与苄基剑麻和模制复合材料有关,其特征在于结构变化,重量减轻和材料的机械性能下降。反应温度和时间,酶溶液的pH值,酶的用量对材料的分解行为有重要影响。原则上,剑麻及其自增强复合材料的酶解是扩散控制的过程。由于木质素对纤维素酶的不敏感性及其对纤维素酶溶液的阻碍,随着时间的增加,材料的降解速率逐渐减慢。

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