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Preparation and Properties of Wet-Spun Microcomposite Filaments from Various CNFs and Alginate

机译:各种CNFS和藻酸盐的湿式微型复合细丝的制备与性能

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摘要

We aimed to improve the mechanical properties of alginate fibers by reinforcing with various cellulose nanofibrils (CNFs). Pure cellulose nanofibril (PCNF), lignocellulose nanofibril (LCNF) obtained via deep eutectic solvent (DES) pretreatment, and TEMPO-oxidized lignocellulose nanofibril (TOLCNF) were employed. Sodium alginate (AL) was mixed with PCNF, LCNF, and TOLCNF with a CNF content of 5–30%. To fabricate microcomposite filaments, the suspensions were wet-spun in calcium chloride (CaCl2) solution through a microfluidic channel. Average diameters of the microcomposite filaments were in the range of 40.2–73.7 μm, which increased with increasing CNF content and spinning rate. The tensile strength and elastic modulus improved as the CNF content increased to 10%, but the addition of 30% CNF deteriorated the tensile properties. The tensile strength and elastic modulus were in the order of LCNF/AL > PCNF/AL > TOLCNF/AL > AL. An increase in the spinning rate improved the tensile properties.
机译:我们旨在通过用各种纤维素纳米纤维(CNF)来改善藻酸盐纤维的机械性能。采用纯纤维素纳米纤维(PCNF),通过深共晶溶剂(DES)预处理获得的木质纤维素纳米纤维(LCNF)和凝固的氧化木质纤维素纳米纤维(TOTCNF)。将藻酸钠(Al)与PCNF,LCNF和TolCNF混合,CNF含量为5-30%。为了制造微型复合丝,通过微流体通道将悬浮液中湿 - 湿 - 氯化钙(CaCl 2)溶液中旋转。微薄二丝的平均直径在40.2-73.7μm的范围内,随着CNF含量的增加和纺纱率而增加。随着CNF含量的提高至10%而改善的拉伸强度和弹性模量,但添加30%CNF劣化的拉伸性能。拉伸强度和弹性模量为LCNF / Al> PCNF / Al> TolcNF / Al> Al的顺序。纺丝率的增加改善了拉伸性能。

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