纤维增强复合材料的细观尺度应变测量

B. Koohbor, C. Montgomery, S. White, N. Sottos
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引用次数: 1

摘要

纤维增强复合材料的有效体积性能可以通过空间均匀化从单个组分的性能来确定。在这方面,均质化是在特定选择的材料体积上进行的,该体积足够小以捕获复杂的局部变形响应,同时足够大以包含所有单个组件,即纤维和基质。这种均质体积的物理尺寸是多尺度研究中的一个关键参数。从微观尺度到宏观尺度反应发生转变的长度尺度的实验测量是具有挑战性的。在本研究中,我们提出了一种系统的方法来估计微观到宏观过渡长度尺度的物理尺寸,根据受远程拉伸载荷的交叉层合板横向平面上的纤维数量。内部制造的交叉层复合材料样品在扫描电子显微镜内的微型拉伸框架中以张力加载,同时从横向层上的小区域获取图像。利用数字图像相关技术(DIC)在不同的全局应力/应变区间获得感兴趣区域内的全场应变分布。采用中尺度应变的空间平均来确定微观到宏观的过渡尺度。
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Meso-Scale Strain Measurements in Fiber Reinforced Composites
Effective bulk properties of fiber-reinforced composites can be determined from individual constituent properties through spatial homogenization. Homogenization, in this regard, is conducted over a specifically selected volume of the material that is sufficiently small to capture complex local deformation response, while large enough to encompass all individual components, i.e. fibers and matrix. The physical dimension of such homogenization volumes is a key parameter in multiscale studies. Experimental measurement of the length scale at which the transition from micro to macroscale response occurs is challenging. In the present study, we propose a systematic approach to estimate the physical dimensions of a micro-to-macro transition length scale in terms of the number of fibers in the transverse plane of a cross-ply laminate subjected to remote tensile load. In-house fabricated cross-ply composite samples are loaded in tension in a miniature tensile frame inside a scanning electron microscope, while images are acquired from a small area of interest located on the transverse ply. Digital Image Correlation (DIC) is utilized to obtain full-field strain distribution within the area of interest at various global stress/strain intervals. Spatial averaging of strains at mesoscale is used to determine the micro-to-macro transition scale.
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