Fracture mechanisms of welding crater solidification cracking were analyzed and revealed by fracture mechanics involved physical quantity and finite element method. Non-dimensionalized method and orthogonal transformation were utilized to translate the weld-induced stress into the loading force used in the stress intensity factor calculation model. Numerical simulation model of the crater solidification crack based on the stress intensity factor were established. The thermal stress intensity factors, including opening, shearing and tearing of the cracks, were calculated and analyzed. The fracture mechanism of the crater solidification crack was further revealed and then verified by fractography. Results showed that the fracture mechanism of the crater solidification cracking was dominated by pull crack, while the cracking propagation was fastest under the sensitive temperature range between 1 100~1 000℃, presenting a zigzag shape cracking orientation.
CHEN Zhanglan
,
XIONG Yunfeng
,
QIU Haijun
,
SUN Qian
. Fracture mechanics analysis of welding crater solidification crack[J]. Transactions of The China Welding Institution, 2018
, 39(12)
: 71
-76
.
DOI: 10.12073/j.hjxb.2018390301
[1] 刘小超, 武传松, 钟益斌, 等. 超声振动强化搅拌摩擦焊的热力行为及微观组织特征[J]. 机械工程学报, 2015, 15(22):22-28 Liu Xiaochao, Wu Chuansong, Zhong Yibin, et al. Thermo-mechanical behaviors and microstructure characteristics of ultrasonic vibration enhanced friction stir welding[J]. Journal of Mechanical Engineering, 2015, 15(22):22-28
[2] Lei Z L, Li B W, Ni L C, et al. Mechanism of the crack formation and suppression in laser-MAG hybrid welded 30CrMnSiA joints[J]. Journal of Materials Processing Technology, 2017, 239:187-194.
[3] 李一楠, 闫久春, 郭峰, 等. 紫铜厚大结构件钨极氩弧焊热裂纹形成机理[J]. 焊接学报, 2014, 35(8):43-47 Li Yinan, Yan Jiuchun, Guo Feng, et al. Formation process of hot cracking in copper He shielding gas tungsten welding[J]. Transactions of the China Welding Institution, 2014, 35(8):43-47
[4] Mei Y P, Liu Y C, Liu C X, et al. Effect of base metal and welding speed on fusion zone microstructure and HAZ hot-cracking of electron-beam welded Inconel 718[J]. Material and Design, 2016, 89:964-977.
[5] 徐积善. 强度理论及其应用[M]. 北京:水利水电出版社, 1984.
[6] 孙国有, 薛继良. 高韧性材料I-Ⅱ复合型裂纹尖端张开位移矢量的研究[J]. 浙江大学学报, 1989, 23(1):70-78 Sun Guoyou, Xie Jiliang. A study of crack tip opening displacement vectors of I-Ⅱ mixed mode fracture in high ductile materials[J]. Journal of Zhejiang University, 1989, 23(1):70-78
[7] Deng D, Kiyoshima S. FEM prediction of welding residual stresses in SUS304 girth-welded pipe with emphasis on stress distribution near weld start/end location[J]. Computational Material Science, 2010, 50:612-621.
[8] 陈章兰, 熊云峰, 李宗民. 船用低温高强钢三维多层焊接变形有限元模拟[J]. 焊接学报, 2008, 29(8):109-112 Chen Zhanglan, Xiong Yunfeng, Li Zongmin. 3D finite element simulation of distortion distribution in multi-layers welding of EH36[J]. Transactions of the China Welding Institution, 2008, 29(8):109-112
[9] Bhatti A A, Barsoum Z, Murakawa H, et al. Influence of thermo-mechanical material properties of different steel grades on welding residual stresses and angular distortion[J]. Material Design, 2015, 65:878-889.
[10] Kannien M F, Popelar C H. Advanced fracture mechanics[J]. International Journal of Fracture, 1986, 30(4):73-74