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Crashworthiness investigation of kagome honeycomb sandwich cylindrical column under axial crushing loads

机译:Kagome蜂窝夹芯圆柱柱在轴向挤压载荷下的耐撞性研究

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摘要

For the classic thin-walled energy absorber, the energy dissipation during a collision is concentrated over relatively narrow zones. This means that a great deal of materials of the columns do not participate in the plastic deformation or not enter into the large plastic deformation stage. To expand the plastic deformation zones and improve the energy absorption efficiency, a new type of kagome honeycomb sandwich bitubal circular column is presented in this paper. This innovative impact energy absorber is made of two circular aluminum tubes filled with core shaped as a large-cell kagome lattice. The interaction effect, deformation mode and energy absorption characteristics of the composite structure are investigated numerically. Observing the collapsing process, it is found that the kagome lattices buckle first, which triggers the outer and inner skin tubes to fold locally. This behavior increases the plastic deformation areas. Moreover, the presence of the outer and inner tubes strengthens the buckling capacity of kagome cell. Furthermore, the folded tube walls intrude into the gap of the honeycomb cell, which further retards the collapse of the honeycomb cell. So the interaction effects between the honeycomb and column walls greatly improve the energy absorption efficiency. In addition, the effects of geometrical parameters of the kagome honeycomb on the structural crashworthiness are studied. It is found that the cell wall thickness and cell distribution (cell number in the circumferential direction) have distinct effects on the specific energy absorption. Besides, we also studied the foam-filled column with the same foam density as the kagome honeycomb and compared it with the kagome sandwich . structure. It is found that the kagome sandwich column has higher mean crash force and better energy absorption characteristics.
机译:对于经典的薄壁能量吸收器,碰撞过程中的能量耗散集中在相对狭窄的区域。这意味着许多立柱的材料不参与塑性变形或不进入大的塑性变形阶段。为了扩大塑性变形区并提高能量吸收效率,本文提出了一种新型的Kagome蜂窝夹芯双筒圆柱。这款创新的冲击能量吸收器由两根圆形铝管制成,其内心充满了一个大单元的kagome晶格。数值研究了复合结构的相互作用效应,变形模式和能量吸收特性。观察崩溃过程,发现kagome晶格首先弯曲,这触发了外皮管和内皮管在局部折叠。此行为会增加塑性变形区域。而且,外管和内管的存在增强了kagome细胞的屈曲能力。此外,折叠的管壁侵入蜂窝单元的间隙,这进一步阻止了蜂窝单元的塌陷。因此,蜂窝与柱壁之间的相互作用效应大大提高了能量吸收效率。此外,研究了kagome蜂窝的几何参数对结构耐撞性的影响。已经发现,泡孔壁的厚度和泡孔分布(沿圆周方向的泡孔数)对比能量吸收具有明显的影响。此外,我们还研究了泡沫密度与鹿儿茶蜂窝结构相同的泡沫填充柱,并将其与鹿儿茶三明治进行了比较。结构体。发现kagome夹心柱具有更高的平均碰撞力和更好的能量吸收特性。

著录项

  • 来源
    《Thin-Walled Structures》 |2010年第1期|9-18|共10页
  • 作者单位

    State Key Laboratory of Structural Analysis for Industrial Equipment, Dalian University of Technology, Dalian 116023, China;

    State Key Laboratory of Structural Analysis for Industrial Equipment, Dalian University of Technology, Dalian 116023, China;

    State Key Laboratory of Structural Analysis for Industrial Equipment, Dalian University of Technology, Dalian 116023, China;

  • 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

    kagome sandwich column; axial crushing; crashworthiness; foam-filled column;

    机译:鹿肉夹心柱;轴向破碎耐撞性泡沫填充柱;

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