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Effective moduli and failure considerations for composites with periodic fiber waviness

机译:具有周期性纤维波纹度的复合材料的有效模量和破坏因素

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摘要

A finite element micromechanical model for fibrous materials introduced in a previous work [J. Compos. Mater. 38 (4) (2004) 273] is used to further study the effects of periodic and localized fiber waviness. A periodic unit cell based on hexagonal fiber packing and sinusoidal fiber waviness was assumed as a representative volume element. Equivalent to this wavy-shaped unit cell, a straight unit cell but with wavy material-orientation is introduced. This type of homogenized continuum modeling simplifies the analysis since the wavy geometry with details of constituent materials is avoided. Thus, stiffness parameters associated with individual lamina with waviness are estimated when subject to the constraining effects of neighboring isotropic or straight fiber material layers. It is shown that the shear constraint of the added layers increases the effective moduli of the wavy layer by inhibiting the fiber straightening deformation mechanism. The local stress distribution is also examined and the potential for material failure is investigated. The methodology provides a platform to study the behavior of wavy fiber composites in a systematic manner.
机译:在先前的工作中介绍的纤维材料的有限元微机械模型[J.组合母校38(4)(2004)273]用于进一步研究周期性和局部纤维波纹度的影响。假定基于六边形纤维堆积和正弦纤维波纹度的周期性晶胞是代表性的体积元素。等效于该波浪形的晶胞,引入了具有波浪形材料取向的笔直的晶胞。这种类型的均质连续体建模简化了分析,因为避免了带有构成材料细节的波浪形几何图形。因此,当受到相邻各向同性或直纤维材料层的约束作用时,估计与具有波纹的单个薄片相关联的刚度参数。结果表明,添加层的剪切约束通过抑制纤维拉直变形机制而增加了波状层的有效模量。还检查了局部应力分布,并研究了材料破坏的可能性。该方法学提供了一个以系统的方式研究波浪状纤维复合材料行为的平台。

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