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首页> 外文期刊>Journal of Engineered Fibers and Fabrics >Comparison of Bio and Eco-technologies with Chemical Methods for Pre-treatment of Flax Fibers: Impact on Fiber Properties
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Comparison of Bio and Eco-technologies with Chemical Methods for Pre-treatment of Flax Fibers: Impact on Fiber Properties

机译:生物和生态技术与化学方法对亚麻纤维进行预处理的比较:对纤维性能的影响

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摘要

Flax fibers, available as fiber bundles, are commonly used as fiber reinforcement in composite materials as a substitute for glass fibers. Pre-treatments are often necessary for improving fiber-resin adhesion, and also to facilitate fiber elementarization, and to improve fiber ability to be implemented in mechanical processes limiting fiber damages. This paper focuses on the impact of biotechnologies (effect of 2 different enzymes: a pectate lyase and a laccase) and of an ecotechnology (ultrasound with ethanol), compared to classical chemical pre-treatments (using aqueous NaOH and ammonia) on the final flax fiber bundle properties, before and after a carding process. Fiber surface properties (wettability and/or zeta potential values), fiber elementarization and mechanical properties vary with the type of treatment (chemical nature of product and conditions used). Fibers elementarised using pectate lyase and ultrasound/ethanol have a hydrophilic surface and a high water absorption capacity, and are also of highest quality in terms of increased fineness. Treatment with NaOH yields the poorest fiber bundle tenacity. Laccase enzyme yields long thick hydrophobic fibers having very low water absorption capacity, and the most neutral surface charge. Properties of flax fibers can be easily monitored using different pre-treatments resulting in fibers which would be suited for various final applications.
机译:亚麻纤维(可作为纤维束)通常用作复合材料中的纤维增强材料,以代替玻璃纤维。预处理对于提高纤维树脂的附着力,促进纤维的元素化以及提高纤维在限制纤维损伤的机械工艺中的能力通常是必需的。与传统的化学预处理(使用NaOH和氨水)相比,本文重点研究了生物技术(两种不同酶的影响:果胶酸裂合酶和漆酶)和生态技术(超声与乙醇)的影响。梳理前后的纤维束特性。纤维表面性质(润湿性和/或ζ电势值),纤维元素化和机械性质随处理类型(产品的化学性质和使用的条件)而异。使用果胶酸裂合酶和超声/乙醇元素化的纤维具有亲水性表面和高吸水率,并且在提高纤度方面也具有最高质量。用NaOH处理产生最差的纤维束韧性。漆酶可产生长而又厚的疏水性纤维,具有极低的吸水能力和最中性的表面电荷。亚麻纤维的性质可以使用不同的预处理方法轻松监控,从而得到适合各种最终应用的纤维。

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