A Rate-Dependent Cohesive Zone Model for Adhesively Bonded Joints Loaded in Mode I

被引:78
作者
Marzi, S. [1 ]
Hesebeck, O. [1 ]
Brede, M. [1 ]
Kleiner, F. [2 ]
机构
[1] Fraunhofer Inst Fertigungstech & Angew Mat Forsch, D-28359 Bremen, Germany
[2] Henkel AG & Co KGaA, D-85748 Garching, Germany
关键词
Adhesive bonding; fracture; mode I; rate-dependency; cohesive zone model (CZM); tapered double cantilever beam; butt joint; crash simulation; CRACK-GROWTH; FRACTURE; ENERGY;
D O I
10.1163/156856109X411238
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The present work investigates the rate-dependent failure behaviour of structural adhesive joints loaded in mode I. Butt joint and tapered double cantilever beam (TDCB) specimens were tested at velocities ranging over more than six orders of magnitude. A rate-dependent extension of the bi-linear cohesive zone model is proposed and implemented into the finite element code LS-DYNA via an user-defined subroutine. The parameters for the implemented cohesive zone model are found directly by evaluation of experimental data. The comparison of simulations with experimental results for different specimen types and test velocities validates the proposed model. The critical energy release rate of adhesively bonded joints is usually measured in (tapered) double cantilever beam tests, and evaluated using the Irwin-Kies equation. In this paper a different evaluation method is proposed, which provides additional information on the energy dissipated during crack initiation. The results of this method agree with the results obtained using the Irwin-Kies equation. The investigations have focussed on thin adhesive layers. Parameter identification and validation have been performed using the crash-optimized adhesive Terokal 5077 from Henkel. (C) Koninklijke Brill NV, Leiden, 2009
引用
收藏
页码:881 / 898
页数:18
相关论文
共 20 条
[1]   The stress-elongation relation for an adhesive layer loaded in peel using equilibrium of energetic forces [J].
Andersson, T ;
Stigh, U .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2004, 41 (02) :413-434
[2]  
[Anonymous], 2001, 79912001 BS
[3]  
*ASTM, 2005, D343399 ASTM
[4]  
Barenblatt G., 1959, APPL MATH MECH-ENGL, V23, P622, DOI 10.1016/0021-8928(59)90157-1
[5]  
Barenblatt GI., 1962, ADV APPL MECH, V7, P55, DOI [10.1016/ S0065-2156(08)70121-2, DOI 10.1016/S0065-2156(08)70121-2]
[6]  
Blackman B. R. K., 2001, FRACTURE MECH TESTIN
[7]   Measuring the mode I adhesive fracture energy, GIC, of structural adhesive joints:: the results of an international round-robin [J].
Blackman, BRK ;
Kinloch, AJ ;
Paraschi, M ;
Teo, WS .
INTERNATIONAL JOURNAL OF ADHESION AND ADHESIVES, 2003, 23 (04) :293-305
[8]   The use of a cohesive zone model to study the fracture of fibre composites and adhesively-bonded joints [J].
Blackman, BRK ;
Hadavinia, H ;
Kinloch, AJ ;
Williams, JG .
INTERNATIONAL JOURNAL OF FRACTURE, 2003, 119 (01) :25-46
[9]   The calculation of adhesive fracture energies in mode I: revisiting the tapered double cantilever beam (TDCB) test [J].
Blackman, BRK ;
Hadavinia, H ;
Kinloch, AJ ;
Paraschi, M ;
Williams, JG .
ENGINEERING FRACTURE MECHANICS, 2003, 70 (02) :233-248
[10]   YIELDING OF STEEL SHEETS CONTAINING SLITS [J].
DUGDALE, DS .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1960, 8 (02) :100-104