首页> 外文期刊>International Journal of Solids and Structures >Compressive failure model for fiber composites by kink band initiation from obliquely aligned, shear-dislocated fiber breaks
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Compressive failure model for fiber composites by kink band initiation from obliquely aligned, shear-dislocated fiber breaks

机译:倾斜排列,剪切错位的纤维断裂引起的扭结带引发的纤维复合材料压缩破坏模型

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Predicting compressive failure of a unidirectional fibrous composite is a longstanding and challenging problem that we study from a new perspective. Motivated by previous modelling of tensile failure as well as experimental observations on compressive failures in single carbon fibers, we develop a new nucromechanical model for the compressive failure process in unidirectional, planar composites. As the compressive load is increased, random fiber failures are assumed to occur due to statistically distributed flaws, analogous to what occurs in tension. These breaks are often shear-mode failures with slanted surfaces that induce shear dislocations, especially when they occur in small groups aligned obliquely. Our model includes interactions of dislocated and neighboring intact fibers through a system of fourth-order, differential equations governing transverse deformation. and also allows for local matrix plastic yielding and debonding from the fiber near and within the dislocation arrays. Using the Discrete Fourier Transform method, we find a 'building-block' analytical solution form, which naturally embodies local length scales of fiber microbuckling and instability. Based on the influence function, superposition approach, a computationally efficient scheme is developed to model the evolution of fiber and matrix stresses. Under increasing compressive strain the simulations show that matrix yielding and debonding crucially lead to large increases in bending strains in fibers next to small groups of obliquely aligned, dislocated breaks. From the paired locations of maximum fiber bending in flanking fibers, the triggering of an unstable kink band becomes realistic. The geometric features of the kink band, such as the fragment lengths and orientation angles, will depend on the fiber and matrix mechanical and geometric properties. In carbon fiber-polymer matrix systems our model predicts a much lower compressive failure stress than obtained from Rosen's classic microbuckling model; yielding values much closer to those observed experimentally. (C) 2004 Elsevier Ltd. All rights reserved.
机译:预测单向纤维复合材料的压缩破坏是一个长期且具有挑战性的问题,我们将从一个新的角度对其进行研究。根据先前的拉伸破坏建模以及对单碳纤维压缩破坏的实验观察的结果,我们开发了一种用于单向平面复合材料压缩破坏过程的新的微机械模型。随着压缩载荷的增加,假定由于统计分布的缺陷(类似于在张力中发生的缺陷)而导致随机纤维故障的发生。这些断裂通常是剪切模式的破坏,其表面倾斜导致剪切错位,特别是当它们发生在倾斜排列的小组中时。我们的模型通过控制横向变形的四阶微分方程系统,包括脱位纤维和相邻完整纤维的相互作用。并允许位错阵列附近和内部的纤维从纤维中屈服和剥离。使用离散傅立叶变换方法,我们找到了一种“构建块”分析解决方案形式,该形式自然体现了纤维微屈曲和不稳定性的局部长度尺度。基于影响函数,叠加方法,开发了一种计算有效的方案来对纤维和基体应力的演化进行建模。在不断增加的压缩应变下,模拟结果表明,基体屈服和脱胶严重地导致了纤维的弯曲应变大幅度增加,紧挨着少量的倾斜排列,错位的断裂。从侧翼纤维中最大纤维弯曲的成对位置开始,引发不稳定的扭结带变得现实。扭结带的几何特征,例如片段的长度和取向角,将取决于纤维和基质的机械和几何特性。在碳纤维-聚合物基体系统中,我们的模型预测的压缩破坏应力比从Rosen的经典微屈曲模型获得的压缩应力低得多。产生的值更接近于实验观察到的值。 (C)2004 Elsevier Ltd.保留所有权利。

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