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Investigation of the effect of matrix volume fraction on fiber stress distribution in polypropylene fiber composite using a simulation method

机译:用模拟方法研究基体体积分数对聚丙烯纤维复合材料纤维应力分布的影响

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摘要

The study of the fracture behavior of polypropylene/glass fiber (PP/GF) composites can be an interesting subject for many investigators. Since glass fiber and polypropylene have different elastic moduli, a complex stress distribution will be developed when the composite body is loaded uniaxially in the direction of fibers. Thus, the prediction of stress distribution by using a simulation method can be helpful for more understanding of the true reasons of fracture of polymer composites. This research is focused on the effect of fiber-matrix interaction on stress distribution along fibers. For this purpose, finite element method was performed. The results of analytical method show that stress distribution along fiber length strongly depends on matrix volume fraction. In fact, increasing matrix volume fraction causes to change variation of stress distribution along fiber length from trapezoidal to parabolic. Looking at in more details on matrix placed near fiber tip indicates that the stress intensity is higher than that of other zones and it leads the matrix to crazing. The simulated results were confirmed by SEM micrographs taken from the polished surface of polypropylene/glass fiber composite, which is loaded under tensile test.
机译:聚丙烯/玻璃纤维(PP / GF)复合材料断裂行为的研究可能是许多研究人员感兴趣的主题。由于玻璃纤维和聚丙烯具有不同的弹性模量,因此当复合体沿纤维方向单轴加载时,会形成复杂的应力分布。因此,使用模拟方法预测应力分布可能有助于进一步了解聚合物复合材料断裂的真正原因。这项研究的重点是纤维-基体相互作用对沿纤维应力分布的影响。为此,执行了有限元方法。分析方法的结果表明,沿纤维长度的应力分布在很大程度上取决于基体体积分数。实际上,增加的基质体积分数会导致应力分布沿纤维长度从梯形变为抛物线形变化。仔细研究放置在纤维尖端附近的基质,可以发现应力强度高于其他区域,并导致基质开裂。模拟结果由SEM显微照片证实,该显微照片取自在拉伸测试下加载的聚丙烯/玻璃纤维复合材料的抛光表面。

著录项

  • 来源
    《Materials & design》 |2007年第4期|1386-1392|共7页
  • 作者

    M. Homayonifar; S.M. Zebarjad;

  • 作者单位

    Department of Materials Science and Metallurgical Engineering, Engineering Faculty, Ferdowsi University, Azadi Square, P.O. Box 91775-1111, Mashhad, Iran;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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