首页> 外文期刊>International Journal of Solids and Structures >Modelling matrix damage and fibre-matrix interfacial decohesion in composite laminates via a multi-fibre multi-layer representative volume element (M2RVE)
【24h】

Modelling matrix damage and fibre-matrix interfacial decohesion in composite laminates via a multi-fibre multi-layer representative volume element (M2RVE)

机译:通过多纤维多层代表体积元素(M2RVE)对复合材料层压板中的基质损伤和纤维-基质界面脱粘进行建模

获取原文
获取原文并翻译 | 示例
           

摘要

A three-dimensional multi-fibre multi-layer micromechanical finite element model was developed for the prediction of mechanical behaviour and damage response of composite laminates. Material response and micro-scale damage mechanism of cross-ply, [0/90]ns, and angle-ply, [±45]ns, glass-fibre/epoxy laminates were captured using multi-scale modelling via computational micromechanics. The framework of the homogenization theory for periodic media was used for the analysis of the proposed 'multi-fibre multi-layer representative volume element' (M2RVE). Each layer in M2RVE was represented by a unit cube with multiple randomly distributed, but longitudinally aligned, fibres of equal diameter and with a volume fraction corresponding to that of each lamina (equal in the present case). Periodic boundary conditions were applied to all the faces of the M2RVE. The non-homogeneous stress-strain fields within the M2RVE were related to the average stresses and strains by using Gauss' theorem in conjunction with the Hill-Mandal strain energy equivalence principle. The global material response predicted by the M2RVE was found to be in good agreement with experimental results for both laminates. The model was used to study effect of matrix friction angle and cohesive strength of the fibre-matrix interface on the global material response. In addition, the M2RVE was also used to predict initiation and propagation of fibre-matrix interfacial decohesion and propagation at every point in the laminae.
机译:建立了三维多纤维多层微机械有限元模型,用于预测复合材料的力学性能和损伤响应。交叉层[0/90] ns和角度层[±45] ns,玻璃纤维/环氧树脂层压板的材料响应和微观损伤机理是通过计算微力学使用多尺度建模来捕获的。周期性介质均质化理论的框架用于分析提出的“多纤维多层代表体积元素”(M2RVE)。 M2RVE中的每一层都由一个单位立方体表示,该单位立方体具有多个随机分布但纵向对齐的直径相等的纤维,其体积分数对应于每个薄片的体积分数(在当前情况下相等)。周期性边界条件应用于M2RVE的所有面。利用高斯定理结合希尔-曼达尔应变能当量原理,将M2RVE内的非均匀应力-应变场与平均应力和应变相关。发现M2RVE预测的整体材料响应与两种层压板的实验结果都非常吻合。该模型用于研究基体摩擦角和纤维-基体界面的内聚强度对整体材料响应的影响。此外,M2RVE还用于预测纤维基质界面脱粘的起始和传播,以及在层流中每个点的传播。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号