首页> 外文期刊>Welding in the World: Journal of the International Institute of Welding: Journal of the International Institute of Welding >Liquid zinc penetration induced intergranular brittle cracking in resistance spot welding of galvannealed advanced high strength steel
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Liquid zinc penetration induced intergranular brittle cracking in resistance spot welding of galvannealed advanced high strength steel

机译:液体锌渗透诱导晶间脆性抗晶型抗镀层焊接镀锌高强度钢

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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.
机译:本研究旨在探讨Zn运输模式和使用Fractography作为键技术的液态金属脆化(LME)与裂缝的破裂机制。在跳闸钢电阻点焊接上进行三点弯曲试验,以打开自由裂缝表面的LME裂缝,用于接种调查。通过Fe-Zn相转变和残留Zn的穗状状形态揭示了裂缝表面上的液体Zn的存在,证实LME裂缝中的Zn运输模式通过奥氏体晶界液体渗透。此外,弯曲试验样品的Fractography和电子背散射的衍射裂缝揭示了LME裂缝的破坏模式,作为完整的晶间脆性断裂,而不会产生任何微泡性。因此,Zn-LME裂解的潜在失败机制可以通过由外部键的解粘性诱导的STOLOFF-JOHNSON-WESTWOID-KAMDAR脆性裂缝模型来解释。总的来说,通过降低液体锌渗透的晶界的表面能引起裂解诱导的晶状体脆性裂化来急剧降低。

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