Mixed-mode fracture of ductile thin-sheet materials under combined in-plane and out-of-plane loading

被引:0
作者
J. -H. Yan
M. A. Sutton
X. Deng
C. -S. Cheng
机构
[1] University of South Carolina,Department of Mechanical Engineering
[2] Vehicle Development Research Lab,GM R&D and Planning
来源
International Journal of Fracture | 2007年 / 144卷
关键词
Mixed mode I/III fracture; Ductile materials; Thin sheet; Digital image correlation; Crack tip fields; Stationary crack; Strain singularity; Crack opening displacement;
D O I
暂无
中图分类号
学科分类号
摘要
Cracks in thin structures often are subjected to combined in-plane and out-of-plane loading conditions leading to complex mixed mode conditions in the crack tip region. When applied to ductile materials, large out-of-plane displacements make both experimentation and modeling difficult. In this work, the mixed-mode behavior of thin, ductile materials containing cracks undergoing combined in-plane tension (mode I) and out-of-plane shear (mode III) deformation is investigated experimentally. Mixed-mode fracture experiments are performed and full, three-dimensional (3D) surface deformations of thin-sheet specimens from aluminum alloy and steel are acquired using 3D digital image correlation. General characteristics of the fracture process are described and quantitative results are presented, including (a) the fracture surface, (b) crack path, (c) load-displacement response, (d) 3D full-field surface displacement and strain fields prior to crack growth, (e) radial and angular distributions of the crack-tip strain fields prior to crack growth and (f) singularity analysis of the crack-tip strains prior to crack growth. Results indicate that the introduction of a mode III component to the loading process (a) alters the crack tip fields relative to those measured during nominally mode I loading and (b) significantly increases the initial and stable critical crack-opening-displacement. The data on strain fields in both AL6061-T6 aluminum and GM6208 steel consistently show that for a given strain component, the normalized angular and radial strains at all load levels can be reasonably represented by a single functional form over the range of loading considered, confirming that the strain fields in highly ductile, thin-sheet material undergoing combined in-plane tension and out-of-plane shear loading can be expressed in terms of separable angular and radial functions. For both materials, the displacement and strain fields are (a) similar for both mixed-mode loading angles Φ = 30° and Φ = 60° and (b) different from the fields measured for Mode I loading angle Φ = 0°. Relative to the radial distribution, results indicate that the in-plane strain components do not uniformly exhibit the singularity trends implicit in the HRR theory.
引用
收藏
页码:297 / 321
页数:24
相关论文
共 94 条
[1]  
Avci A(2005)Mixed mode fracture behavior of glass fiber reinforced polymer concrete Cement Concrete Res 35 243-247
[2]  
Akdemir A(1990)Crack-tip behavior of stationary and growing cracks in Al–Fe–X alloys: part I. Near-tip strain field Metall Trans A 21 69-80
[3]  
Arikan H(2005)Three-dimensional modeling of ductile crack growth: Cohesive zone parameters and crack tip triaxiality Eng Fract Mech 72 2072-2094
[4]  
Chan KS(1994)CTOA and crack-tunneling measurements in thin sheet 2024-T3 aluminum alloy Exp Mech 34 357-368
[5]  
Chen CR(1998)A parametric study of mixed-mode I/III ductile fracture in tough materials under small scale yielding Eng Fract Mech 60 407-420
[6]  
Kolednik O(2002)A combined temporal tracking and stereo-correlation technique for accurate measurement of 3D displacements: application to sheet metal forming J Mater Process Technol 125–126 736-742
[7]  
Heerens J(1964)Plastic strains and energy density in cracked plates: part I-experimental technique and results Exp Mech 4 335-344
[8]  
Dawicke DS(1995)A study of stable crack growth in thin SEC specimen of 304 stainless steel by computer vision Eng Fract Mech 52 525-555
[9]  
Sutton MA(2003)Deformations in wide, center-notched, thin panels Optical Eng 42 1293-1320
[10]  
Gao X(1981)Study of the fracture behavior of polyethersulphone Polymer 22 1745-1753