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Micro and macro analysis of sisal fibre composites hollow core sandwich panels

机译:剑麻纤维复合材料空心夹芯板的微观和宏观分析

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摘要

In the view of the growing environmental concerns, hollow cores from recyclable natural fibre composites were manufactured to reduce the undesirable impact on the environment. To evaluate the feasibility of using short sisal fibres as reinforcements in the composites, existing micromechanical models have been used to predict properties starting from the intrinsic properties of its constituents. The stress relaxation behaviour of the composites was examined experimentally by performing tensile stress relaxation tests and to understand the process, it was modelled using variations of Maxwell's model. A steady-state finite element analysis in the linear range was performed in ANSYS environment to examine flexural properties of the panels, and the shear strength of the hollow cores was experimentally determined by subjecting them to flexural loads in a four-point bending scheme. The micromechanics models indicated that the fibres had failed to provide effective reinforcements with their existing lengths, acting as fillers rather than reinforcements. The stress relaxation models indicated that the formed part needs to be cooled to room temperature within the die under suitable forming loads to avoid local deformations due to warping. The mid-span deflections of the sandwich panels predicted by the FE model agree well with the experimental results, the analysis predicted facing buckling as a mode of failure when wood veneers facings of modulus 4.5 GPa and thickness 1.7 mm were used. The specific shear strengths of the reinforced core are more than twice than those of the unreinforced polypropylene cores, increasing the scope of such panels as structural members in various engineering facets.
机译:鉴于对环境的日益关注,制造了由可回收天然纤维复合材料制成的空心材料,以减少对环境的不良影响。为了评估在复合材料中使用短剑麻纤维作为增强材料的可行性,现有的微力学模型已被用来从其成分的固有特性开始预测特性。通过执行拉伸应力松弛测试,对复合材料的应力松弛行为进行了实验检查,并且为了了解该过程,使用麦克斯韦模型的变化对其进行了建模。在ANSYS环境中进行了线性范围内的稳态有限元分析,以检查面板的抗弯性能,并通过在四点弯曲方案中对空心芯施加弯曲载荷,通过实验确定了空心芯的剪切强度。微观力学模型表明,纤维不能以其现有长度提供有效的增强,而是充当填充物而不是增强物。应力松弛模型表明,需要在合适的成型载荷下将模具内的成型零件冷却至室温,以避免因翘曲而产生局部变形。有限元模型预测的夹层板的中跨挠度与实验结果吻合良好,分析预测当使用模量为4.5 GPa和厚度为1.7 mm的木贴面时,面屈曲是破坏的一种方式。增强型芯的比抗剪强度是未增强聚丙烯型芯的比抗剪强度的两倍以上,从而扩大了各种工程方面作为结构构件的这种板的范围。

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  • 来源
    《Composites》 |2012年第7期|p.2738-2745|共8页
  • 作者单位

    Centre for Advanced Composite Materials, Department of Mechanical Engineering, The University of Auckland, Auckland Mail Centre 1142, New Zealand;

    Centre for Advanced Composite Materials, Department of Mechanical Engineering, The University of Auckland, Auckland Mail Centre 1142, New Zealand;

    Centre for Advanced Composite Materials, Department of Mechanical Engineering, The University of Auckland, Auckland Mail Centre 1142, New Zealand;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A. Polymer-matrix composites (PMCs); B. Stress relaxation; C. Micro-mechanics; C. Finite element analysis (FEA);

    机译:A.聚合物基复合材料(PMC);B.压力松弛;C.微力学;C.有限元分析(FEA);

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