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Absorption energy of layered structures due to impact loading

机译:冲击载荷对层状结构的吸收能

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摘要

In this study, the finite element formulation for the investigation of the effects of a localized interfacial delamination on the energy absorption of the [90°/0°] laminated composite plate under impact loading is conducted. The stiffness of the laminate is determined by assembling the stiffnesses of sub-elements contributed by top and bottom laminae as well as the interface under impact loading. An introduction of an interface layer with stress- and strain- influenced material description is proposed to model a more realistic interfacial delamination. Also, the kinematically consistent mass matrix and mass proportional damping are formulated to complete the transient vibration governing expression. To simulate the interfacial degeneration of the laminate, it is defined in a localized manner in accordance with the maximum stress and strain of material under study induced by impact loading. The effects of localized interface delamination on the laminated composite plates when subjected to low velocity impact loading for various energies are investigated. Generally, the central displacement and degenerated area of interface increases as the impact energy increased. In addition, the absorption energy by the interface is rises due to higher impact energy. More realistic damaged models offer greater absorption energy compared to those undamaged.
机译:在这项研究中,进行了有限元公式,以研究在冲击载荷下局部界面分层对[90°/ 0°]层压复合板能量吸收的影响。层压板的刚度通过组装由顶部和底部层板以及在冲击载荷下的界面贡献的子元素的刚度来确定。提出了具有应力和应变影响的材料描述的界面层的介绍,以对更现实的界面分层建模。此外,还建立了运动学上一致的质量矩阵和质量比例阻尼,以完成瞬态振动控制表达式。为了模拟层压板的界面退化,根据冲击载荷引起的被研究材料的最大应力和应变,以局部方式进行定义。研究了各种能量在低速冲击载荷下局部界面分层对层压复合板的影响。通常,界面的中心位移和退化面积随着冲击能量的增加而增加。另外,由于较高的冲击能,界面的吸收能增加。与未损坏的模型相比,更真实的损坏模型提供了更大的吸收能量。

著录项

  • 作者

    Koo Shi Qi;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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