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晶胞尺寸和纤维排列对纤维增强复合材料横向拉伸响应的影响。

Influence of Unit Cell Size and Fiber Packing on the Transverse Tensile Response of Fiber Reinforced Composites.

作者信息

D'Mello Royan J, Waas Anthony M

机构信息

Department of Aerospace Engineering, University of Michigan, Ann Arbor, MI 48109-2140, USA.

出版信息

Materials (Basel). 2019 Aug 12;12(16):2565. doi: 10.3390/ma12162565.

Abstract

Representative volume elements (RVEs) are commonly used to compute the effective elastic properties of solid media having repeating microstructure, such as fiber reinforced composites. However, for softening materials, an RVE could be problematic due to localization of deformation. Here, we address the effects of unit cell size and fiber packing on the transverse tensile response of fiber reinforced composites in the context of integrated computational materials engineering (ICME). Finite element computations for unit cells at the microscale are performed for different sizes of unit cells with random fiber packing that preserve a fixed fiber volume fraction-these unit cells are loaded in the transverse direction under tension. Salient features of the response are analyzed to understand the effects of fiber packing and unit cell size on the details of crack path, overall strength and also the shape of the stress-strain response before failure. Provision for damage accumulation/cracking in the matrix is made possible via the Bazant-Oh crack band model. The results suggest that the choice of unit cell size is more sensitive to strength and less sensitive to stiffness, when these properties are used as homogenized inputs to macro-scale models. Unit cells of smaller size exhibit higher strength and this strength converges to a plateau as the size of the unit cell increases. In this sense, since stiffness has also converged to a plateau with an increase in unit cell size, the converged unit cell size may be thought of as an RVE. Results in support of these insights are presented in this paper.

摘要

代表性体积单元(RVE)通常用于计算具有重复微观结构的固体介质(如纤维增强复合材料)的有效弹性性能。然而,对于软化材料,由于变形局部化,RVE可能会出现问题。在此,我们在综合计算材料工程(ICME)的背景下,研究了单元尺寸和纤维排列对纤维增强复合材料横向拉伸响应的影响。针对具有随机纤维排列且保持固定纤维体积分数的不同尺寸单元,进行了微观尺度下单元的有限元计算——这些单元在横向受拉加载。分析响应的显著特征,以了解纤维排列和单元尺寸对裂纹路径细节、整体强度以及失效前应力 - 应变响应形状的影响。通过巴赞特 - 奥裂纹带模型实现了基体中损伤累积/开裂的考虑。结果表明,当将这些性能用作宏观尺度模型的均匀化输入时,单元尺寸的选择对强度更为敏感,而对刚度较不敏感。较小尺寸的单元表现出更高的强度,并且随着单元尺寸的增加,这种强度会收敛到一个平稳值。从这个意义上说,由于刚度也随着单元尺寸的增加而收敛到一个平稳值,收敛后的单元尺寸可以被视为一个RVE。本文给出了支持这些见解的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3165/6720440/d4edb76331c1/materials-12-02565-g001.jpg

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