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Influence of temperature dependent matrix properties on the high-rate impact performance of thin glass fiber reinforced composites

机译:温度依赖性矩阵特性对薄玻璃纤维增​​强复合材料的高速冲击性能的影响

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摘要

The influence of measurement temperature on the high velocity (100 m/s) impact performance was investigated for three thermosetting epoxy resin S-2 glass composite systems. These three model resins were chemically similar but have different glass transition temperatures (T-g) and molecular weights between crosslinks (M-c) through the use of different diamine curing agents (Jeffamine (R) D230, D400, and D2000). Impact performance was quantified by the projectile kinetic energy absorbed (KE50) as calculated from the characteristic ballistic velocity (V-50) of the composites during high velocity impact. Among the resin systems, the KE50 remained essentially constant over a broad range of temperatures for each composite set and modestly increased with decreasing M-c. The superficial damage area associated with delamination showed remarkable sigmoidal behavior as a function of the testing temperature relative to the T-g (T-T-g). Damage was high for low T-T-g values (glassy resin) and decreased as the resin traversed its Tg into the rubbery region. These damage area trends were found to depend on the resin M-c, with higher M-c values resulting in lower overall damage area and a lower inflection point temperature. High speed videography of the back surface of the samples showed that lower damage areas correlated with an increased back face deflection, which enabled energy absorption with relatively less delamination. Composite mechanical tests were performed to validate the impact performance and explain the deformation mechanisms observed during impact energy dissipation. Our results illustrate the critical importance of the resin architecture and temperature-dependent viscoelastic behavior on the impact properties of composites for impact-resistance applications.
机译:研究了测量温度对高速(> 100m / s)冲击性能的影响,用于三个热固性环氧树脂S-2玻璃复合系统。这三种模型树脂在化学上相似但通过使用不同的二胺固化剂(JoffamineD230,D400和D2000),在交联(M-C)之间具有不同的玻璃化转变温度(T-G)和分子量。通过在高速冲击期间从复合材料的特征弹道速度(V-50)计算的射弹动能吸收(KE50)量化了冲击性能。在树脂体系中,KE50在每个复合装置的宽范围温度范围内基本上恒定,并且随着M-C的降低而温和地增加。与分层相关的浅表损伤区域表现出具有相对于T-G(T-T-G)的测试温度的函数的显着矩形行为。低T-T-G值(玻璃状树脂)损伤高,随着树脂横穿其Tg进入橡胶区域而降低。发现这些损伤区域趋势取决于树脂M-C,具有较高的M-C值,导致较低的整体损伤区域和较低的拐点温度。样品的后表面的高速摄像图像显示,较低的损坏区域与增加的背面偏转相关,这使能量吸收具有相对较少的分层。进行复合机械测试以验证冲击性能并解释在碰撞能量耗散过程中观察到的变形机制。我们的结果说明了树脂结构和温度依赖性粘弹性行为对抗冲击应用复合材料的冲击性能的关键重要性。

著录项

  • 来源
    《Composites》 |2020年第jul1期|108009.1-108009.10|共10页
  • 作者单位

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA;

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA|Univ Delaware Newark DE 19716 USA;

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA;

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA;

    Bowhead Total Enterprise Solut Springfield VA 22150 USA;

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA;

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA|Univ Delaware Newark DE 19716 USA;

    US Army Combat Capabil Dev Command Res Lab Aberdeen Proving Ground MD 21005 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Glass fiber composites; High velocity impact; Viscoelastic epoxy resin;

    机译:玻璃纤维复合材料;高速冲击;粘弹性环氧树脂;

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