Compressive response of glass fiber composite sandwich structures

被引:39
作者
Malcom, A. J. [1 ]
Aronson, M. T. [2 ]
Deshpande, V. S. [3 ]
Wadley, H. N. G. [4 ]
机构
[1] Univ Virginia, Dept Mech Engn, Charlottesville, VA 22904 USA
[2] New Fibers Grp, Richmond, VA 23234 USA
[3] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
[4] Univ Virginia, Dept Mat Sci & Engn, Charlottesville, VA 22903 USA
关键词
Glass fibers; Foams; 3-Dimensional reinforcement; Mechanical properties; PLATES; DEFORMATION; FAILURE; PERFORMANCE; IMPACT; PANELS;
D O I
10.1016/j.compositesa.2013.07.007
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Sandwich panels with crushable foam cores have attracted significant interest for impulsive load mitigation. We describe a method for making a lightweight, energy absorbing, glass fiber composite sandwich structure and explore it is through thickness (out-of-plane) compressive response. The sandwich structure utilized corrugated composite cores constructed from delamination resistant 3D woven E-glass fiber textiles folded over triangular cross section prismatic closed cell, PVC foam inserts. The corrugated structure was stitched to 3D woven S2-glass fiber face sheets and infiltrated with a rubber toughened, impact resistant epoxy. The quasi-static compressive stress-strain response of the panels was experimentally investigated as a function of the strut width to length ratio and compared to micromechanical predictions. Slender struts failed by elastic (Euler) buckling which transitioned to plastic microbuckling as the strut aspect ratio increased. Good agreement was observed between experimental results and micromechanical predictions over the wide range of core densities investigated in the study. Published by Elsevier Ltd.
引用
收藏
页码:88 / 97
页数:10
相关论文
共 37 条
  • [1] Agarwal B.D., 2006, Analysis and performance of fiber composites, VThird
  • [2] Argon A.S., 1972, Fracture of Composites in Treatise on Materials. Science and Technology
  • [3] ASHBY M. F., 2000, Metal Foams: A Design Guide
  • [4] Damping properties of aluminium foams
    Banhart, J
    Baumeister, J
    Weber, M
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1996, 205 (1-2): : 221 - 228
  • [5] Binner J, 2005, CELLULAR CERAMICS: STRUCTURE, MANUFACTURING, PROPERTIES AND APPLICATIONS, P33
  • [6] A discrete particle approach to simulate the combined effect of blast and sand impact loading of steel plates
    Borvik, T.
    Olovsson, L.
    Hanssen, A. G.
    Dharmasena, K. P.
    Hansson, H.
    Wadley, H. N. G.
    [J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2011, 59 (05) : 940 - 958
  • [7] STRAIN-RATE AND INERTIA EFFECTS IN THE COLLAPSE OF 2 TYPES OF ENERGY-ABSORBING STRUCTURE
    CALLADINE, CR
    ENGLISH, RW
    [J]. INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 1984, 26 (11-1) : 689 - &
  • [8] Gradient foam core materials for sandwich structures: Preparation and characterisation
    Danielsson, M
    Grenestedt, JL
    [J]. COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 1998, 29 (08) : 981 - 988
  • [9] Mechanical response of metallic honeycomb sandwich panel structures to high-intensity dynamic loading
    Dharmasena, Kumar P.
    Wadley, Haydn N. G.
    Xue, Zhenyu
    Hutchinson, John W.
    [J]. INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2008, 35 (09) : 1063 - 1074
  • [10] The dynamic response of edge clamped plates loaded by spherically expanding sand shells
    Dharmasena, Kumar P.
    Wadley, Haydn N. G.
    Liu, Tao
    Deshpande, Vikram S.
    [J]. INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2013, 62 : 182 - 195