Numerical simulations of fatigue crack initiation and propagation based on re-tensile plastic zone generating load criterion for in-plane gusset welded joints

被引:0
作者
Yukinobu Nagata
Koji Gotoh
Masahiro Toyosada
机构
[1] Kyushu University,Department of Civil and Structural Engineering, Graduate School of Engineering
[2] Kyushu University,Department of Marine Systems Engineering, Faculty of Engineering
[3] Kyushu University,Professor Emeritus
来源
Journal of Marine Science and Technology | 2009年 / 14卷
关键词
Fatigue; Re-tensile plastic zone generating (RPG) load; Numerical simulations of fatigue crack initiation and propagation; FLARP; In-plane gusset welded joints;
D O I
暂无
中图分类号
学科分类号
摘要
Many accidents are caused by fatigue in welded built-up steel structures, and so it is important to estimate the fatigue lives of such structures quantitatively for safety reasons. By assuming that fatigue cracks cannot grow without an accumulation of alternating tensile/compressional plastic strain, one of the authors identified an improved effective stress intensity factor range ΔKRPG based on the re-tensile plastic zone generating (RPG) load, which represents the driving force for fatigue cracks, and suggested that ΔKRPG should be used as the parameter to describe fatigue crack growth behavior. The “FLARP” numerical simulation code in which ΔKRPG is implemented as the fatigue crack growth parameter, was developed in order to predict fatigue crack initiation and propagation behavior. In this paper, it is demonstrated that FLARP gives accurate estimates for fatigue life by comparing the estimated fatigue crack growth curves and S–N curves with the experimental results for in-plane gusset welded joints, which are used in many welded steel structures. Moreover, the effect of induced bending moment due to the linear misalignment in the out of plane direction on the fatigue strength of in-plane gusset welded joints is investigated through numerical simulations.
引用
收藏
页码:104 / 114
页数:10
相关论文
共 14 条
[1]  
Schütz W(1996)A history of fatigue Eng Fract Mech 54 263-300
[2]  
Toyosada M(1994)The significance of RPG load for fatigue crack propagation and the development of a compliance measuring system Int J Fract 67 217-230
[3]  
Niwa T(2004)Fatigue crack propagation for a through thickness crack; a crack propagation law considering cyclic plasticity near the crack tip Int J Fatigue 26 983-992
[4]  
Toyosada M(2004)Fatigue life assessment for welded structure without initial defects; an algorithm for predicting fatigue crack growth from a sound site Int J Fatigue 26 993-1002
[5]  
Gotoh K(1958)Recent observation on fatigue failure in metals ASTM STP 237 110-121
[6]  
Niwa T(1963)On the crack extension in plates under plane loading and transverse shear J Basic Eng Trans ASME Ser D 86 519-527
[7]  
Toyosada M(1983)An analytical method on residual stresses in welded built-up shell structures (in Japanese) J Soc Nav Archit Jpn 85 210-217
[8]  
Gotoh K(1985)Calculation of inelastic notch-tip strain–stress histories under cyclic loading Eng Fract Mech 22 839-864
[9]  
Niwa T(undefined)undefined undefined undefined undefined-undefined
[10]  
Wood WA(undefined)undefined undefined undefined undefined-undefined