An experimental cum numerical technique to determine dynamic interlaminar fracture toughness

被引:1
|
作者
Verma, SK [1 ]
Kumar, P [1 ]
Kishore, NN [1 ]
机构
[1] Indian Inst Technol, Dept Mech Engn, Kanpur 208016, Uttar Pradesh, India
关键词
dynamic fracture; interlaminar toughness; DCB specimen; initiation toughness; propagation toughness;
D O I
10.1016/S0013-7944(98)00030-7
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A method combining experimental and finite element analysis is developed to determine interlaminar dynamic fracture toughness. An interlaminar crack is propagated at very high speed in a double cantilever beam (DCB) specimen made of two steel strips which are bonded together by epoxy with a precrack of about 40 mm length. The face of the front cantilever is bonded to a large solid block and a special fixture is designed to apply impact load to the rear cantilever through a load bar. In the load bar, a compressive square shaped elastic stress pulse is generated by impacting it with a striker bar which is accelerated in an air gun. The rear cantilever is screwed to the load bar; when the incident compressive pulse reaches the specimen, a part of the energy is reflected into the load bar and the rest of it passes to the specimen. By monitoring the incident and the reflected pulses in the load bar through strain gauges, deflection of cantilever-end is determined. The crack velocity is determined by three strain gauges of 0.2 mm gauge length bonded to the side face of the rear cantilever. Further, the first strain gauge, bonded very close to the tip of the precrack, and the crack velocity determine the initiation time of crack propagation. The experimental results are used as input data in a finite element (FE) code to calculate J-integral by the gradual release of nodal forces to model the propagation of the interlaminar crack. The initiation fracture toughness and propagation fracture toughness are evaluated for an interlaminar crack propagating with a velocity in the range of 850 to 1785 m/s. The initiation toughness and propagation toughness were found to vary between 90-200 J/m(2) and 2-13 J/m(2), respectively. (C) 1998 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:583 / 596
页数:14
相关论文
共 50 条
  • [1] An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites
    Ponnusami S.A.
    Cui H.
    Erice B.
    Lißner M.
    Pathan M.
    Petrinic N.
    Composite Structures, 2022, 293
  • [2] An Experimental-Numerical Hybrid Method to Determine Dynamic Elastic-Plastic Fracture Toughness
    Zhu Shi-fan
    Cao Yang
    Guo Chun-huan
    Jiang Feng-chun
    ADVANCES IN FRACTURE AND DAMAGE MECHANICS XII, 2014, 577-578 : 517 - +
  • [3] Determination of dynamic fracture toughness using a new experimental technique
    Cady, Carl M.
    Liu, Cheng
    Lovato, Manuel L.
    DYMAT 2015 - 11TH INTERNATIONAL CONFERENCE ON THE MECHANICAL AND PHYSICAL BEHAVIOUR OF MATERIALS UNDER DYNAMIC LOADING, 2015, 94
  • [4] Experimental and numerical study on the tensile, three-point-bending, and interlaminar fracture toughness of GLARE
    Bassem Dahshan
    Abdel-Halim M. El-Habbak
    Mahmoud A. Adly
    Mostafa Shazly
    Journal of Mechanical Science and Technology, 2020, 34 : 3273 - 3281
  • [5] A four-point bend technique to determine dynamic fracture toughness of ceramics
    Weerasooriya, T
    Moy, P
    Casem, D
    Cheng, M
    Chen, W
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2006, 89 (03) : 990 - 995
  • [6] Experimental and numerical study on the tensile, three-point-bending, and interlaminar fracture toughness of GLARE
    Dahshan, Bassem
    El-Habbak, Abdel-Halim M.
    Adly, Mahmoud A.
    Shazly, Mostafa
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2020, 34 (08) : 3273 - 3281
  • [7] A method for testing interlaminar dynamic fracture toughness of polymeric composites
    Sun, CT
    Han, C
    COMPOSITES PART B-ENGINEERING, 2004, 35 (6-8) : 647 - 655
  • [8] NUMERICAL AND EXPERIMENTAL EVALUATION OF THE MODE-III INTERLAMINAR FRACTURE-TOUGHNESS OF COMPOSITE-MATERIALS
    BECHT, GJ
    GILLESPIE, JW
    POLYMER COMPOSITES, 1989, 10 (05) : 293 - 304
  • [9] EXPERIMENTAL DYNAMIC FRACTURE-TOUGHNESS
    ANDRZEJEWSKI, A
    KLEPACZKO, J
    PLUVINAGE, G
    JOURNAL DE MECANIQUE APPLIQUEE, 1981, 5 (03): : 345 - 366
  • [10] Mixed experimental-structural model for interlaminar shear fracture toughness
    Bachrach, William E.
    Hicks, Thomas R.
    Habas, Zbigniew S.
    Granata, Dianne M.
    Journal of Aerospace Engineering, 1991, 4 (01): : 108 - 125