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Influence of the Loading Path on the Strength of Fiber-Reinforced Composites Subjected to Transverse Compression and Shear

机译:加载路径对承受横向压缩和剪切作用的纤维增强复合材料强度的影响

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摘要

The influence of the loading path on the failure locus of a composite lamina subjected to transverse compression and out-of-plane shear is analyzed through computational micromechanics. This is carried out using the finite element simulation of a representative volume element of the microstructure, which takes into account explicitly fiber and matrix spatial distribution within the lamina. In addition, the actual failure mechanisms (plastic deformation of the matrix and interface decohesion) are included in the simulations through the corresponding constitutive models. Two different interface strength values were chosen to explore the limiting cases of composites with strong or weak interfaces. It was found that failure locus was independent of the loading path for the three cases analyzed (pseudo-radial, compression followed by shear and shear followed by compression) in the composites with strong and weak interfaces. This result was attributed to the fact that the dominant failure mechanism in each material was the same in transverse compression and in shear. Failure is also controlled by the same mechanisms under a combination of both stresses and the failure locus depended mainly on the magnitude of the stresses that trigger fracture rather than in the loading path to reach the critical condition.
机译:通过计算微力学分析了加载路径对复合材料层合板在横向压缩和平面外剪切作用下的破坏轨迹的影响。这是通过对微观结构中具有代表性的体积元素进行有限元模拟来实现的,该模拟明确考虑了层板中纤维和基质的空间分布。此外,通过相应的本构模型,模拟中包括了实际的失效机制(基体的塑性变形和界面脱粘)。选择了两个不同的界面强度值来研究具有强或弱界面的复合材料的极限情况。研究发现,在具有强界面和弱界面的复合材料中,分析的三种情况(伪径向,压缩再剪力和剪力再压缩)的破坏轨迹均与加载路径无关。该结果归因于以下事实:每种材料的主要破坏机理在横向压缩和剪切力上都是相同的。失效也由相同的机制在应力和应力组合下进行控制,失效轨迹主要取决于触发断裂的应力大小,而不是取决于达到临界条件的加载路径。

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