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Feasibility of Barley Straw Fibers as Reinforcement in Fully Biobased Polyethylene Composites: Macro and Micro Mechanics of the Flexural Strength

机译:大麦秸秆纤维在全生物基聚乙烯复合材料中增强的可行性:抗弯强度的宏观和微观力学

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摘要

Awareness on deforestation, forest degradation, and its impact on biodiversity and global warming, is giving rise to the use of alternative fiber sources in replacement of wood feedstock for some applications such as composite materials and energy production. In this category, barley straw is an important agricultural crop, due to its abundance and availability. In the current investigation, the residue was submitted to thermomechanical process for fiber extraction and individualization. The high content of holocellulose combined with their relatively high aspect ratio inspires the potential use of these fibers as reinforcement in plastic composites. Therefore, fully biobased composites were fabricated using barley fibers and a biobased polyethylene (BioPE) as polymer matrix. BioPE is completely biobased and 100% recyclable. As for material performance, the flexural properties of the materials were studied. A good dispersion of the reinforcement inside the plastic was achieved contributing to the elevate increments in the flexural strength. At a 45 wt.% of reinforcement, an increment in the flexural strength of about 147% was attained. The mean contribution of the fibers to the flexural strength was assessed by means of a fiber flexural strength factor, reaching a value of 91.4. The micromechanical analysis allowed the prediction of the intrinsic flexural strength of the fibers, arriving up to around 700 MPa, and coupling factors between 0.18 and 0.19, which are in line with other natural fiber composites. Overall, the investigation brightness on the potential use of barley straw residues as reinforcement in fully biobased polymer composites.
机译:对森林砍伐,森林退化及其对生物多样性和全球变暖的影响的意识正在引起人们使用替代纤维源替代木材原料用于某些用途,例如复合材料和能源生产。在这一类别中,大麦秸秆由于其丰富和可利用性而成为重要的农作物。在目前的研究中,残留物经过热机械处理,用于纤维提取和个性化处理。高含量的全纤维素及其相对较高的长径比激发了这些纤维在塑料复合材料中作为增强材料的潜在用途。因此,使用大麦纤维和生物基聚乙烯(BioPE)作为聚合物基体来制造完全生物基的复合材料。 BioPE完全基于生物,并且100%可回收。关于材料性能,研究了材料的弯曲性能。增强材料在塑料内部的良好分散,有助于提高抗弯强度。在45重量%的增强下,抗弯强度增加了约147%。纤维对挠曲强度的平均贡献通过纤维挠曲强度因子来评估,达到91.4的值。通过微机械分析,可以预测纤维的固有抗弯强度,最高可达700 MPa,耦合系数在0.18至0.19之间,与其他天然纤维复合材料一致。总体而言,有关大麦秸秆残留物在完全生物基聚合物复合材料中的潜在用途的研究前景光明。

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