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首页> 外文期刊>Composite Structures >Predicting variability in transverse effective elastic moduli and failure initiation strengths in UD composite microstructures due to randomness in fiber location and morphology
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Predicting variability in transverse effective elastic moduli and failure initiation strengths in UD composite microstructures due to randomness in fiber location and morphology

机译:预测由于纤维位置和形态的随机性而导致的UD复合材料微结构的横向有效弹性模量和破坏起始强度的变化

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In this study, variability in transverse mechanical properties of unidirectional (UD) composites arising from the randomness present in the geometrical descriptors of the fibers, specifically fiber location and morphology was quantified via finite element analysis of an ensemble of computer-generated microstructures. These microstructures were produced based on geometrical descriptors evaluated from the image analysis of an actual microstructure. To ensure consistency, all synthetic microstructures were modified to match both the short-range and long-range statistics of the actual microstructure. This technique enabled generation of microstructures that are statistically similar but morphologically different, i.e. they have the same statistics but different configurations. Image-based three-dimensional finite element models were developed for the microstructures based on pixel and morphology-based meshing strategies and subsequently analyzed for elastic and strength properties, respectively. Cohesive zone modeling and extended finite element method were employed to predict failure initiation strengths of the stochastic microstructures under two transverse biaxial loading scenarios: (i) transverse tension - transverse tension and (ii) transverse tension - transverse shear loading. Seven load ratio cases were investigated for each scenario, namely 0/1, 0.2679/1,1/root 3, 1/1, root 3/1, 3.7321/1, and 1/0. To demonstrate the variability existing in the investigated biaxial strengths of the UD composite microstructures, stochastic failure envelopes showing contours of three different reliability levels were developed. The results indicated that microstructural variability has little to no influence on transverse elastic moduli; however, it significantly influences transverse strengths. It was also found that the hexagonal packing microstructure provides a good estimation for the average effective elastic moduli, however, it overpredicts the strengths by a large margin.
机译:在这项研究中,单向(UD)复合材料的横向机械性能的变异性是通过对计算机生成的微结构整体进行有限元分析来量化的,这些随机性是由纤维的几何描述子中存在的随机性引起的,特别是纤维的位置和形态。这些微结构是根据从实际微结构的图像分析中评估的几何描述符生成的。为确保一致性,对所有合成微结构进行了修改,以匹配实际微结构的短期和长期统计。该技术使得能够生成统计上相似但形态上不同的微结构,即它们具有相同的统计量但是不同的构造。针对基于像素和基于形态的网格划分策略的微观结构,开发了基于图像的三维有限元模型,然后分别分析了其弹性和强度特性。内聚区建模和扩展有限元方法被用来预测两种横向双轴载荷情况下的随机微结构的破坏起始强度:(i)横向拉力-横向拉力和(ii)横向拉力-横向剪力载荷。针对每种情况调查了七个负载比情况,分别为0 / 1、0.2679 / 1、1 /根3、1 / 1,根3 / 1、3.7321 / 1和1/0。为了证明在研究的UD复合材料双轴强度中存在可变性,开发了显示三种不同可靠性等级轮廓的随机破坏包络线。结果表明,微观结构的变化对横向弹性模量几乎没有影响。但是,它会显着影响横向强度。还发现六边形堆积的微观结构为平均有效弹性模量提供了一个很好的估计,但是,它大大预测了强度。

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