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纤维素衍生物纤维的吸水性与机械性能

Water Sorption and Mechanical Properties of Cellulosic Derivative Fibers.

作者信息

Simon Mathilde, Fulchiron René, Gouanvé Fabrice

机构信息

Univ Lyon, CNRS, UMR 5223, Ingénierie des Matériaux Polymères, Université Claude Bernard Lyon 1, INSALyon, Université Jean Monnet, CEDEX, F-69622 Villeurbanne, France.

出版信息

Polymers (Basel). 2022 Jul 12;14(14):2836. doi: 10.3390/polym14142836.

Abstract

In this study, water vapor sorption, desorption properties and tensile mechanical properties of four cellulosic fibers, cotton (C), flax (F), viscose (V) and cellulose acetate (CA), were determined. The sorption and desorption isotherms were modeled using the Park model, which allowed an accurate fitting on the whole range of water activity. This model corresponds to a multi-sorption mode dividing in three sorption modes: Langmuir sorption, Henry's law and water clustering. Park's parameters were compared for the sorption and desorption isotherms for each fiber. Regardless of the fiber, differences between sorption and desorption were obtained only for the Henry sorption. The obtained sorption properties were correlated to the accessibility and the amount of sorption sites and also to the crystallinity level of the fibers. It was found that V exhibited the highest water sorption capacity due to a higher hydroxyl groups accessibility and a low amorphous fraction, followed by F, C and CA. Results from tensile tests demonstrated that F and C fibers were more rigid, more resistant and less ductile than CA and V fibers due to a difference of microstructure of the fibers. Finally, the presence of water-sorbed molecules led to a decrease in tensile modulus due to plasticization phenomenon.

摘要

在本研究中,测定了四种纤维素纤维,即棉(C)、亚麻(F)、粘胶(V)和醋酸纤维素(CA)的水蒸气吸附、解吸性能以及拉伸力学性能。吸附和解吸等温线采用帕克模型进行建模,该模型能够在整个水分活度范围内进行精确拟合。此模型对应于一种多吸附模式,分为三种吸附模式:朗缪尔吸附、亨利定律和水簇集。比较了每种纤维吸附和解吸等温线的帕克参数。无论何种纤维,仅在亨利吸附方面获得了吸附和解吸之间的差异。所获得的吸附性能与可及性、吸附位点数量以及纤维的结晶度水平相关。研究发现,由于较高的羟基可及性和较低的无定形部分,V表现出最高的吸水能力,其次是F、C和CA。拉伸试验结果表明,由于纤维微观结构的差异,F和C纤维比CA和V纤维更刚硬、更具抗性且延展性更小。最后,由于增塑现象,吸附水分子的存在导致拉伸模量降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2169/9322568/589d4a28a728/polymers-14-02836-g001.jpg

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