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首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >Stress transfer and damage evolution simulations of fiber-reinforced polymer-matrix composites
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Stress transfer and damage evolution simulations of fiber-reinforced polymer-matrix composites

机译:纤维增强聚合物基复合材料的应力传递和损伤演化模拟

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摘要

The stress transfer from broken fibers to unbroken fibers in fiber-reinforced thermosetting polymer-matrix composites and thermoplastic polymer-matrix composites was studied using a detailed finite element model. In order to check the validity of this approach, an epoxy-matrix monolayer composite was used as thermosetting polymer-matrix composite and a polypropylene (PP)-matrix monolayer composite was used as thermoplastic polymer—matrix composite, respectively. It is found that the stress concentrations near the broken fiber element cause damage to the neighboring epoxy matrix prior to the breakage of other fibers, whereas in the case of PP-matrix composites the fibers nearest to the broken fiber break prior to the PP matrix damage, because the PP matrix around the broken fiber element yields. In order to simulate composite damage evolution, a Monte Carlo technique based on a finite element method has been developed in the paper. The finite element code coupled with statistical model of fiber strength specifically written for this problem was used to determine the stress redistribution. Five hundred samples of numerical simulation were carried out to obtain statistical deformation and failure process of composites with fixed fiber volume fraction. The result indicates that the moderate interfacial shear sliding strength can weaken the adverse effect of fiber breaks on composite strength, resulting in the increase of the average strength of composites.
机译:使用详细的有限元模型研究了纤维增强的热固性聚合物基复合材料和热塑性聚合物基复合材料中从断裂纤维到未断裂纤维的应力转移。为了检验该方法的有效性,分别将环氧-基体单层复合材料用作热固性聚合物-基体复合材料,将聚丙烯(PP)-基体单层复合材料用作热塑性聚合物-基体复合材料。发现在断裂的纤维元件附近的应力集中在其他纤维断裂之前对相邻的环氧基质造成了破坏,而在PP-基质复合材料的情况下,最接近断裂的纤维在PP基体破坏之前断裂了。 ,因为断裂的纤维元素周围的PP基体会屈服。为了模拟复合材料损伤的演化,本文开发了一种基于有限元方法的蒙特卡洛技术。针对该问题专门编写的有限元代码和纤维强度统计模型用于确定应力的重新分布。进行了500次数值模拟样品,以获得具有固定纤维体积分数的复合材料的统计变形和破坏过程。结果表明,适度的界面剪切滑动强度可以减弱纤维断裂对复合材料强度的不利影响,从而提高复合材料的平均强度。

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