Fracture toughness of the + 45° / – 45° interface of a laminate composite

被引:2
|
作者
Leslie Banks-Sills
Yuval Freed
Rami Eliasi
Victor Fourman
机构
[1] Tel Aviv University,Department of Solid Mechanics, The Dreszer Fracture Mechanics Laboratory, Materials and Systems, The Fleischman Faculty of Engineering
来源
关键词
Delamination; Fracture toughness; Fiber-reinforced composite material; Three-dimensional conservative integrals; Finite elements; Thermal ; -integral;
D O I
暂无
中图分类号
学科分类号
摘要
Experiments are carried out to determine the delamination toughness for a crack along the interface between two transversely isotropic materials. The material chosen for study consists of carbon fibers embedded within an epoxy matrix. A crack is introduced between two layers of this material, with fibers in the upper layer along the  + 45°-direction and those in the lower layer along the  − 45°-direction both with respect to the crack plane. The Brazilian disk specimen is employed in the testing. To calibrate the specimens, stress intensity factors are obtained which result from the applied load, as well as residual curing stresses. It may be noted that all three modes are coupled, leading to a three-dimensional problem. The finite element method and a mechanical M-integral are employed to determine the stress intensity factors arising from the applied load. For the residual stresses, a three-dimensional conservative thermal M-integral is presented for stress intensity factor determination. The stress intensity factors found for the applied load and residual stresses are superposed to obtain a local energy release rate, together with two phase angles. From the load at fracture, the critical interface energy release rate or interface toughness \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$${{\mathcal G}_{ic}}$$\end{document} as a function of phase angles ψ and ϕ is determined. Results are compared to a fracture criterion.
引用
收藏
页码:195 / 210
页数:15
相关论文
共 50 条
  • [31] Prediction of composite laminate fracture: Micromechanics and progressive fracture
    Gotsis, PK
    Chamis, CC
    Minnetyan, L
    COMPOSITES SCIENCE AND TECHNOLOGY, 1998, 58 (07) : 1137 - 1149
  • [32] Prediction of the macroscopic fracture toughness of a composite/adhesive interface with periodic surface microstructures
    Suzuki, Takuya
    Matsuzaki, Ryosuke
    Todoroki, Akira
    Mizutani, Yoshihiro
    INTERNATIONAL JOURNAL OF ADHESION AND ADHESIVES, 2015, 60 : 16 - 22
  • [33] Evaluation of interface fracture toughness in SiC fiber reinforced titanium matrix composite
    Yuan Mei-ni
    Yang Yan-qing
    Huang Bin
    Li Jian-kang
    Chen Yan
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2008, 18 (04) : 925 - 929
  • [34] Evaluation of interface fracture toughness in SiC fiber reinforced titanium matrix composite
    原梅妮
    杨延清
    黄斌
    李健康
    陈彦
    Transactions of Nonferrous Metals Society of China, 2008, (04) : 925 - 929
  • [35] Fracture toughness of a laminated composite
    Kao-Walter, S
    Stahle, P
    Hägglund, R
    FRACTURE OF POLYMERS, COMPOSITES AND ADHESIVES II, 2003, 32 : 355 - 364
  • [36] Evaluation of intralaminar fracture toughness of angle-ply laminate
    Kumar, RR
    Jose, S
    Rao, GV
    INDIAN JOURNAL OF ENGINEERING AND MATERIALS SCIENCES, 2002, 9 (04) : 269 - 274
  • [37] Estimation of Apparent Fracture Toughness of Alumina Based Ceramic Laminate
    Masa, Bohuslav
    Nahlik, Lubos
    Hutar, Pavell
    MATERIALS STRUCTURE & MICROMECHANICS OF FRACTURE VII, 2014, 592-593 : 405 - 408
  • [38] Enhanced tensile strength and fracture toughness of a Ti-TiAl metal-intermetallic laminate (MIL) composite
    Sun, Wei
    You, Fenghai
    Kong, Fantao
    Wang, Xiaopeng
    Chen, Yuyong
    INTERMETALLICS, 2020, 118
  • [39] On the relation between the mode I fracture toughness of a composite laminate and that of a 0° ply: Analytical model and experimental validation
    Camanho, P. P.
    Catalanotti, G.
    ENGINEERING FRACTURE MECHANICS, 2011, 78 (13) : 2535 - 2546
  • [40] Dependence of fracture toughness of composite laminates on interface ply orientations and delamination growth direction
    Andersons, J
    König, M
    COMPOSITES SCIENCE AND TECHNOLOGY, 2004, 64 (13-14) : 2139 - 2152