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首页> 外文期刊>Journal of Materials Science >Time-dependent micromechanical behavior in graphite/epoxy composites under constant load at elevated temperatures
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Time-dependent micromechanical behavior in graphite/epoxy composites under constant load at elevated temperatures

机译:高温下恒定负载下石墨/环氧树脂复合材料中随时间变化的微力学行为

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摘要

Time dependent deformation at the individual fiber level was investigated in graphite fiber/epoxy composites at elevated temperatures using micro Raman spectroscopy (MRS) and a time dependent shear-lag based single fiber composite model (SFM). The modeling parameters were obtained from the creep response of the unfilled epoxy at several stress levels and at temperatures up to 80°C. An effective fiber spacing was used in the model predictions to account for the radial decay of the interfacial shear stress from the fiber surface. Good agreement was observed between the model predictions and MRS data when the temperature dependence of τp (the shear stress in the matrix yielded zone) and γc (the critical shear strain for the onset of inelasticity) were taken into account. Overall, the inelastic length growing from the fiber fractures increases with temperature and time. This leads to a wider stress concentration profile in the neighboring intact fibers, which increases the chance of failure in the intact fibers and facilitates the creep-rupture process of the composite.
机译:使用微拉曼光谱(MRS)和基于时间的基于剪切滞后的单纤维复合材料模型(SFM),研究了石墨纤维/环氧树脂复合材料在高温下在单个纤维水平上随时间的变形。建模参数是从未填充的环氧树脂在几个应力水平和最高80°C的蠕变响应中获得的。在模型预测中使用了有效的纤维间距,以说明纤维表面界面剪切应力的径向衰减。当取τp(基体屈服区中的切应力)和γc(非弹性开始的临界剪切应变)的温度依赖性时,模型预测与MRS数据之间存在良好的一致性。考虑在内。总体而言,由纤维断裂引起的无弹性长度随温度和时间而增加。这导致相邻的完整纤维中的应力集中分布更宽,这增加了完整纤维中破坏的机会,并促进了复合材料的蠕变断裂过程。

著录项

  • 来源
    《Journal of Materials Science》 |2003年第5期|877-884|共8页
  • 作者单位

    Materials Science and Engineering Rensselaer Polytechnic Institute;

    Los Alamos National Laboratory;

    Materials Science and Engineering Rensselaer Polytechnic Institute;

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  • 原文格式 PDF
  • 正文语种 eng
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