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Effect of Mechanical Properties on Fibre Addition of Flax and Graphene-Based Bionanocomposites

机译:力学性能对亚麻和石墨烯基生物纳米复合材料纤维添加量的影响

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摘要

Natural fibre-based polymer nanocomposites have played an essential role in many industry domains for four to five years because of their strong mechanical and physical qualities. The primary goal of this research is to establish the mechanical and morphological properties of nanocomposite materials in natural environments. Flax fibre was employed as a reinforcement, nanographene powder was used as a filler, and epoxy resin was used as a matrix material to achieve the goals above, keeping the following restrictions in mind: (i) fibre length (15, 30 and 45 nam), (ii) fibre content (10,15 and 20 mm), and (iii) wt. of nanofiller (2.5, 5 and 7.5 wt.). The composite materials were laminated using the compression moulding process per the Taguchi L9 design. The mechanical characteristics of the material, such as flexural, tensile, and impact properties, were examined according to ASTM standards. The mechanical characteristics of combinations A2, B2, and C2 are the best when compared to other combinations. The graphene-based nanocomposites revealed that 2.5 wt. graphene contributes 33.08 of mechanical properties, the 5 wt. graphene contributes 36.4, and the 7.5 wt. graphene contributes 30.53. Including 5 -wt. graphene content provides the highest mean values of mechanical strengtii like 36.59 MPa tensile, 40.25 MPa flexural, and 31.68 kg/m2 of impact. Scanning electron microscopy (SEM) images of the cracked specimens were used better to understand the failure process of composites during mechanical testing.
机译:四到五年来,天然纤维基聚合物纳米复合材料因其强大的机械和物理特性,在许多工业领域发挥了重要作用。本研究的主要目标是建立纳米复合材料在自然环境中的力学和形态性能。亚麻纤维被用作增强材料,纳米石墨烯粉末被用作填料,环氧树脂被用作基体材料来实现上述目标,同时牢记以下限制:(i)纤维长度(15、30和45 nam),(ii)纤维含量(10、15和20 mm),以及(iii)纳米填料的wt.%(2.5、5和7.5 wt.%)。复合材料是按照田口L9设计的压缩成型工艺层压的。根据ASTM标准检查材料的机械特性,如弯曲、拉伸和冲击性能。与其他组合相比,组合 A2、B2 和 C2 的机械特性最好。石墨烯基纳米复合材料的力学性能为2.5 wt.%,石墨烯为36.4%,石墨烯为30.53%。石墨烯含量为 5 wt.%,可提供最高的机械强度平均值,如 36.59 MPa 拉伸、40.25 MPa 弯曲和 31.68 kg/m2 冲击。利用裂纹试样的扫描电子显微镜(SEM)图像可以更好地理解复合材料在力学测试过程中的失效过程。

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    Department of Mechanical Engineering, Saveetha School of Engineering, SIMATS, Chennai, Tamil Nadu 602105, India;

    Department of Mechanical Engineering, Velammal Institute of Technology, Chennai 601204, Tamil Nadu, India;

    Department of Automobile Engineering, Velammal Engineering College, Velammal New-Gen Park, Ambattur-Redhills Road, Chennai 600066, Tamil Nadu, India;

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  • 正文语种 英语
  • 中图分类 化学工业;
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