Energy-absorbing effectiveness factor

被引:118
|
作者
Jones, Norman [1 ]
机构
[1] Univ Liverpool, Dept Engn, Liverpool L69 3GH, Merseyside, England
关键词
Energy-absorbing effectiveness factor; Impact; Square and circular Tubes; Top-hat and double-hat sections; Multi-cell sections; THIN-WALLED STRUCTURES; ALUMINUM EXTRUSIONS; SQUARE TUBE; IMPACT; ABSORPTION; STEEL; MULTICELL; CRASHWORTHINESS; SECTIONS;
D O I
10.1016/j.ijimpeng.2009.01.008
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A study is reported on the energy-absorbing effectiveness factor which was introduced recently. The factor is defined as the quotient of the total energy, which can be absorbed in a system, to the maximum energy up to failure in a normal tensile specimen, which is made from the same volume of material. This dimensionless parameter allows comparisons to be made of the effectiveness of various geometrical shapes and of energy absorbers made from different materials. The influence of material properties and various geometrical parameters on the value of the dimensionless parameter has been examined for the static and dynamic axial crushing behaviours of thin-walled sections. The influence of foam fillings and the stiffening of circular and square tubes is examined. It transpires that, according to the energy-absorbing effectiveness factor, an axially crushed circular tube is the most effective structural shape. Moreover multi-cellular cross-sections, and axial stiffening, increases the effectiveness of thin-walled sections. In these latter two cases, the energy absorbed by the additional material in a tensile test is included in the denominator of the energy-absorbing effectiveness factor. The influence of foam filling was found to increase the energy-absorbing effectiveness factor even though the additional energy absorbed by the foam is retained in the denominator. It was also noted that a circular tube, crushed axially either statically or dynamically, and made from an aluminium alloy, had a larger energy-absorbing effectiveness factor than a similar one made from a stainless steel, because the steel had a larger rupture strain which was not required during the deformation of the particular geometry examined. (C) 2008 Published by Elsevier Ltd.
引用
收藏
页码:754 / 765
页数:12
相关论文
共 50 条
  • [21] ENERGY-ABSORBING POLYMER SMOTHERS EARTHQUAKE TREMORS
    HOGAN, BJ
    DESIGN NEWS, 1980, 36 (09) : 74 - 75
  • [22] Energy-absorbing performance of graded Voronoi foams
    Lin, Hui
    Lv, Lin
    Zhang, Jianjun
    Wang, Zhihua
    JOURNAL OF CELLULAR PLASTICS, 2019, 55 (06) : 589 - 613
  • [23] The energy-absorbing characteristics of tubular sandwich structures
    Jishi, H. Z.
    Alia, R. A.
    Cantwell, W. J.
    JOURNAL OF SANDWICH STRUCTURES & MATERIALS, 2022, 24 (01) : 742 - 762
  • [24] A review on the performance of conventional and energy-absorbing rockbolts
    Li, Charlie C.
    Stjern, Gisle
    Myrvang, Arne
    JOURNAL OF ROCK MECHANICS AND GEOTECHNICAL ENGINEERING, 2014, 6 (04) : 315 - 327
  • [25] THE ENERGY-ABSORBING PROPERTIES OF A NOVEL CELLULAR STRUCTURE
    SMALL, GD
    ANSELL, MP
    JOURNAL OF MATERIALS SCIENCE, 1987, 22 (08) : 2717 - 2722
  • [26] GENERAL MOTORS ENERGY-ABSORBING STEERING COLUMN
    SKEELS, PC
    SAE TRANSACTIONS, 1967, 75 : 154 - &
  • [27] A review on the performance of conventional and energy-absorbing rockbolts
    Charlie C.Li
    Gisle Stjern
    Arne Myrvang
    Journal of Rock Mechanics and Geotechnical Engineering, 2014, 6 (04) : 315 - 327
  • [28] Development of energy-absorbing composite utility pole
    Foedinger, R
    Boozer, JF
    Bronstad, ME
    Davidson, JW
    HIGHWAY AND FACILITY DESIGN 2003: HIGHWAY AND FACILITY DESIGN, 2003, (1851): : 149 - 157
  • [29] A NOTE ON A VELOCITY SENSITIVE ENERGY-ABSORBING STRUCTURE
    ZHANG, TG
    YU, TX
    INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 1989, 8 (01) : 43 - 51
  • [30] Failure mechanisms in energy-absorbing composite structures
    Johnson, Alastair F.
    David, Matthew
    PHILOSOPHICAL MAGAZINE, 2010, 90 (31-32) : 4245 - 4261