首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Investigation into mechanical, absorption and swelling behaviour of hemp/sisal fibre reinforced bioepoxy hybrid composites: Effects of stacking sequences
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Investigation into mechanical, absorption and swelling behaviour of hemp/sisal fibre reinforced bioepoxy hybrid composites: Effects of stacking sequences

机译:大麻/ Sisal纤维增强生物氧化杂交复合材料机械,吸收和肿胀行为的调查:堆叠序列的影响

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摘要

This work focuses on the fabrication of hybrid bio-composites using green epoxy as the matrix material, hemp (H) and sisal (S) fibre mats as the reinforcements. The hybrid composite with sisal/hemp fibres were fabricated by cost effective hand lay-up technique, followed by hot press with different stacking sequences. Static properties of the composites such as tensile, compressive, inter-laminar shear strengths (ILSS) and hardness were examined. The physical properties such as density, void content, water absorption and thickness swelling were also analyzed. The experimental results indicate that hybrid composites exhibited minor variation in tensile strength when the stacking sequence was altered. The hybrid composite with the intercalated arrangement (HSHS) exhibited the highest tensile modulus when compared with the other hybrid counterparts. Hybrid composites (SHHS and HSSH) offered 40% higher values of compressive strength than the other layering arrangements. HHHH sample exhibited the highest ILSS value of 4.08 MPa. Typical failure characteristics of the short beam test such as inter-laminar shear cracks in the transverse direction, micro-buckling and fibre rupture were also observed. (C) 2019 Elsevier B.V. All rights reserved.
机译:这项工作侧重于使用绿色环氧树脂作为基质材料,大麻(H)和Sisal(S)纤维垫作为增强剂的混合生物复合材料的制造。通过具有成本效益的手放置技术制造具有Sisal / HEMP纤维的杂化复合材料,然后用不同的堆叠序列进行热压机。检查复合材料的静态性质,如拉伸,压缩,层间剪切强度(ILS)和硬度等。还分析了密度,空隙含量,吸水和厚度溶胀的物理性质。实验结果表明,当改变堆叠序列时,杂化复合材料表现出抗拉强度的微小变化。与其他混合对应物相比,具有插入布置(HSH)的杂化复合材料表现出最高拉伸模量。混合复合材料(SHHS和HSSH)的抗压强度值高于其他分层布置。 HHHH样品显示出4.08 MPa的最高ILSS值。还观察到横向下层间剪切裂纹的短梁试验的典型故障特性,微屈曲和纤维破裂。 (c)2019 Elsevier B.v.保留所有权利。

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