Liquid zinc penetration induced intergranular brittle cracking in resistance spot welding of galvannealed advanced high strength steel

被引:1
|
作者
Siva Prasad Murugan
Jong Bae Jeon
Changwook Ji
Yeong-Do Park
机构
[1] Dong-Eui University,Department of Advanced Materials Engineering
[2] Korea Institute of Industrial Technology,Functional Components and Materials R&D Group
[3] Korea Institute of Industrial Technology,Advanced Forming Process R&D Group
来源
Welding in the World | 2020年 / 64卷
关键词
Liquid metal embrittlement (LME); Resistance spot welding (RSW); Transformation-induced plasticity (TRIP) steel; Fractography; Intergranular brittle fracture; Electron backscattered diffraction (EBSD);
D O I
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中图分类号
学科分类号
摘要
This study aims to explore the mode of Zn transportation and the failure mechanism of cracking associated with liquid metal embrittlement (LME) using fractography as the key technique. A three-point bend test was performed on a TRIP steel resistance spot weld to open the LME crack in the form of a free fracture surface for the fractographic investigation. The presence of liquid Zn on the fracture surface was revealed by the Fe-Zn phase transformation and the spike-like morphology of the residual Zn, confirming that the mode of Zn transportation in LME cracks was liquid penetration through the austenite grain boundary. In addition, the fractography of the bend test samples and electron backscattered diffraction of the cracks revealed the failure mode of the LME crack as a complete intergranular brittle fracture without the generation of any microplasticity. Thus, the underlying failure mechanism of cracking in Zn-LME can be explained by the Stoloff-Johnson-Westwood-Kamdar brittle fracture model induced by the decohesion of interatomic bonds. Overall, a dramatic reduction in the interatomic bond strength by lowering the surface energy of the grain boundary with liquid Zn penetration causes the decohesion-induced intergranular brittle cracking.
引用
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页码:1957 / 1969
页数:12
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