期刊文献+

撞击作用下泡沫铝填充结构吸能特征 被引量:7

Energy absorption of foamed aluminum-filled structures subjected to explosive and impact loadings
下载PDF
导出
摘要 泡沫铝是由金属铝制成,由于铝具有较低的强度,导致泡沫铝本身的承载能力和吸能特性受到局限。典型的抗振吸能结构是泡沫铝填充结构或夹芯结构。采用实验和数值模拟方法分析了泡沫铝填充结构在冲击作用下的变形特征与吸能特性。研究表明,填充结构中钢制圆柱壳在整个冲击吸能过程中占主要地位,它与泡沫的相互作用使得变形过程中的能量吸收和初始失稳载荷随冲击速度的提高而增加;当钢制圆柱壳的壁厚增加时,峰值塌陷载荷和总的吸能也提高。在100 kg范围内,冲击质量对初始峰值塌陷载荷的影响不大。由于钢壳是主要的承载和吸能部件,要想提高泡沫铝填充结构的吸能特性,需要合理地设计泡沫密度与钢壳厚度,充分利用它们之间的相互作用关系。 The carrying capacity and energy absorption characteristics of the foamed aluminum, made from metal aluminum, are limited due to the lower strength of aluminum. The typical antivibration energy absorbing structures are designed as foamed aluminum filled or sandwich structures. The deformation and absorption characteristics of the foamed aluminum filled structures subjected to impact loadings were analyzed using experimental and numerical methods. The results show that the steel shell of sandwich structures dominates during energy absorption. The energy absorption capacity and initial instability loading increase with the increase impact velocity and shell thickness, clue to the interaction between the steel shell and foam. The impact mass has little influences on peak instability loading within the range of 100 kg. Since the steel shell is the dominating part of load capacity and energy absorption, the reasonable design, taking into account of foam density and shell thickness and taking full advantage of interaction between steel shell and aluminum foam, should be adopted to increase the energy absorption characteristic of filled structures.
出处 《解放军理工大学学报(自然科学版)》 EI 2007年第5期470-473,共4页 Journal of PLA University of Science and Technology(Natural Science Edition)
关键词 泡沫铝 填充结构 吸能 爆炸作用 冲击作用 数值模拟 foamed aluminum filled structure energy absorption explosive loading impact loading nu- merical simulation
  • 相关文献

参考文献12

  • 1GIBSON L J, ASHBY M F. Cellular Solids: structure and properties [M]. 2nd Edition. Cambridge:Cambridge University Press, 1997. 被引量:1
  • 2BAUMEISTER J, BANHART J, WEBER M. Aluminum foams for transport industry[J]. Materials Design, 1997, 18(4/6):217-22. 被引量:1
  • 3胡时胜,刘剑飞,王正道,宋博.低密度多孔介质的缓冲和减振[J].振动与冲击,1999,18(2):39-42. 被引量:13
  • 4HASSAN M, ZU Yuehui, Investigation of high-velocity impact on integral armor using finite element method[J].Int J Impact Engn, 2000, 24:203-217. 被引量:1
  • 5RAZLE A, GAMA, Travis A Bogetti etc. Aluminum foam integral armor: a new dimension in armor design [J]. Composite Structure,2001, 52,383-395. 被引量:1
  • 6王礼立.爆炸与冲击载荷下结构和材料动态响应研究的新进展[J].爆炸与冲击,2001,21(2):81-88. 被引量:72
  • 7DESHPANDE V S, FLECK N A. Isotropic constitutive model for metallic foams[J]. Journal of the Mechanics and Physics of Solids, 2000,48:1253-1276. 被引量:1
  • 8STEINBERG D J, COCHRAN SG, GUINAN M W. A constitutive model for metals applicable at high- strain Rate[J]. Journal of Applied Physics, 1980, 51 (3):1498-1504. 被引量:1
  • 9STEINBERG D J. Equation of state and strength properties of selected materials[R]. LLNL, 1991. 被引量:1
  • 10ROGERS G F C, MAYHEW Y R. Thermodynamic and transport properties of fluids Lonqman. 1992. 被引量:1

二级参考文献16

  • 1姜俊平,振动计算与隔振设计,1985年,121页 被引量:1
  • 2王正道,硕士学位论文,1997年 被引量:1
  • 3Cheng C M,Proceedings of Int Conference on Fundamental Issues and Applications of Shockwave and High Strain Ra,2000年 被引量:1
  • 4Song Fan,ICTAM 2000 No HO6,2000年 被引量:1
  • 5Clifton R J,ICTAM 2000 No IH2,2000年 被引量:1
  • 6Ma L A,ICTAM 2000 No IH3,2000年 被引量:1
  • 7Zhuang Shiming,ICTAM 2000 No IH5,2000年 被引量:1
  • 8Ramesh K T,ICTAM 2000 No JH1,2000年 被引量:1
  • 9Yu Tongxi,ICTAM 2000 No JH3,2000年 被引量:1
  • 10Zhou Min,ICTAM 2000 No JH6,2000年 被引量:1

共引文献83

同被引文献99

引证文献7

二级引证文献31

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部