会议论文详细信息
International Symposium on Dynamic Deformation and Fracture of Advanced Materials 2013
Indentation tests of aluminium honeycombs
物理学;材料科学
Ashab, A.^1 ; Wong, Y.C.^1 ; Lu, G.^2 ; Ruan, D.^1
Faculty of Engineering and Industrial Sciences, Swinburne University of Technology, Hawthorn, VIC 3122, Australia^1
School of Mechanical and Aerospace Engineering, Nanyang Technological University, 639798 Singapore, Singapore^2
关键词: Aluminium honeycomb;    Cell-wall thickness;    Compressive behavior;    Dynamic indentation;    Engineering applications;    Force-displacement curves;    Quasi-static tests;    Structural component;   
Others  :  https://iopscience.iop.org/article/10.1088/1742-6596/451/1/012003/pdf
DOI  :  10.1088/1742-6596/451/1/012003
学科分类:材料科学(综合)
来源: IOP
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【 摘 要 】

Aluminium honeycomb is a type of cellular material which has high strength to weigh ratio and is a good energy absorber. They are used as structural components in various engineering applications. Comprehensive study has been conducted on the compressive behavior of aluminium honeycombs. However, the research of aluminium honeycombs subjected to other type of loading, such as indentation, is still limited. In this paper, quasi-static and dynamic indentation tests were conducted to study the deformation and energy absorption of three types of HEXCELL® aluminium honeycombs with different cell sizes and cell wall thicknesses. Quasi-static tests were conducted by using a universal MTS machine at velocities of 0.05 mm/s, 0.5 mm/s and 5 mm/s, respectively. Dynamic tests were conducted by using a high speed INSTRON machine at a velocity of 5 m/s. Force-displacement curves were plotted in which the total energy absorbed was calculated. The deformation of aluminium honeycombs in indentation tests includes the compression of honeycomb cells under the indenter and tearing of honeycomb cell walls along the indenter edges. The energy dissipated in compression and tearing were calculated and discussed. The effects of cell size, cell wall thickness and loading velocity or strain rate on the plateau stress and energy absorption were analyzed.

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