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Honeycomb core failure mechanism of CFRP/Nomex sandwich panel under multi-angle impact of hail ice

机译:CFRP / Nomex夹层面板蜂窝核心故障机制在冰雹冰的多角度影响下

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摘要

The rudder of an airplane is fabricated as a sandwich panel and can potentially be damaged by hail ice. The dynamic responses of a CFRP/Nomex sandwich panel with barely any visible core damage under multi-angle impact of an ice sphere at various velocities are researched experimentally and by using numerical simulations at the mesoscale. The results show that the honeycomb core represents three types of failure modes: wrinkling, fracture of cell walls, and debonding of cell walls at the interface of two-glued-paper-walls (TGPW) due to resin failure. These failure modes exist at specific impact velocities and angles. This paper proposes a mesoscale numerical modeling method of a honeycomb structure to represent the debonding failure at the TGPW interface. In addition, the mechanical properties of these failures are revealed, as the wrinkling of the cell walls are caused by buckling and the fracture of the cell walls and debonding of the TGPW interface are caused by outplane and in-plane shearing of cell walls. The results showed that the relationship between the denting and impact kinetic energy under multi-angle impact is linear with respect to the impact angle. The effects of impact angles on the contacting forces on a rigid wall and sandwich panel are presented as the amount of peak impact forces affected by the target material type. However, the intensity of the peak impact forces is rarely affected by the type of the target material. The peak impact force of nonvertical impact is greater than that of the normal impact when the normal components of the impact velocities are the same. This is because the impact angle affects the distribution of ice scatter fragments during the impact, and this generates different pressure distributions on the face sheet of the panel.
机译:飞机的方向舵是夹层面板制造的,并且可能被冰冰损坏。 CFRP / Nomex夹心板的动态响应在实验研究中,在各种速度下进行了几乎没有可见核心损伤的冰球的多角度造成的可见核心损伤。通过Mesoscale在Mesoscale上使用数值模拟。结果表明,蜂窝芯代表了三种类型的故障模式:由于树脂衰竭,在双胶纸壁(TGPW)的界面处,细胞壁的皱纹,细胞壁骨折和剥离的细胞壁。这些故障模式存在于特定的冲击速度和角度。本文提出了一种蜂窝结构的Messcale数值建模方法,以表示TGPW界面处的借助失败。另外,由于细胞壁的皱纹是由弯曲引起的,因此由弯曲引起的细胞壁和TGPW界面的剥离是由单元壁的平面和面内剪切引起的。结果表明,在多角度撞击下牙齿与冲击动能之间的关系是相对于冲击角的线性。冲击角对刚性壁和夹层板上的接触力的影响被呈现为受目标材料类型影响的峰值冲击力的量。然而,峰值冲击力的强度很少受到目标材料类型的影响。非抗冲击峰的峰值冲击力大于冲击速度的正常部件相同的正常冲击的力。这是因为冲击角影响在撞击期间冰散射片段的分布,并且这在面板的面板上产生不同的压力分布。

著录项

  • 来源
    《International journal of impact engineering》 |2021年第4期|103817.1-103817.13|共13页
  • 作者单位

    Fudan Univ Dept Aeronaut & Astronaut Shanghai 200433 Peoples R China|Xi An Jiao Tong Univ State Key Lab Strength & Vibrat Mech Struct Xian 710049 Peoples R China;

    Univ Calif San Diego Dept Struct Engn La Jolla CA 92093 USA;

    Calif State Univ Long Beach Dept Mech & Aerosp Engn Long Beach CA 90840 USA;

    Univ Calif San Diego Dept Struct Engn La Jolla CA 92093 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hail ice; Impact; Sandwich panel; Multi-angle; Core failure;

    机译:冰冰;冲击;夹心板;多角度;核心故障;

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