Numerical investigations on cold cracking avoidance in fillet welds of high-strength steels

被引:0
|
作者
E. Steppan
T. Mente
Th. Böllinghaus
机构
[1] BAM Federal Institute for Materials Research and Testing,9.4 Weld Mechanics
[2] BAM Federal Institute for Materials Research and Testing,9 Component Safety
来源
Welding in the World | 2013年 / 57卷
关键词
High-strength structural steels; Hydrogen diffusion; Numerical simulation; Hydrogen-assisted cold cracking (HACC); T joints; Fillet welds; Post-weld heat treatment; Hydrogen removal heat treatment diagram (HRHT);
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中图分类号
学科分类号
摘要
Industry faces a growing demand for high-strength structural steels with yield strengths of up to 1,300 MPa in order to cope with increasingly higher strength requirements in engineering. Higher strength levels are achieved by a special coordinated production process and an adapted chemical composition. Nevertheless, disastrous damage cases with high-strength steels have occurred in the past. The sensitivity to mechanical property degradation by hydrogen increases dramatically with strength. This phenomenon leads to hydrogen-assisted cold cracking. T-joints with fillet welds made from one side with an included angle of 60° were examined for their cold cracking behavior. Based on the T-joint, a modified heat input, even interpass temperature, plate thickness, and length ones were examined. The diffusion behavior and the effectiveness of different post-weld heat treatments in joints were simulated. The results of post-weld heat treatments are illustrated in practical hydrogen removal heat treatment diagrams. It is noticed that the T-joint is subject to a very high risk of hydrogen-assisted cold cracking (HACC). Contrary to other joints, its most critical area for cracking is not the weld metal but the heat-affected zone surrounding area of the root pass. The simulation shows that HACC in the T-joint can only be avoided by applying a sufficient post-weld heat treatment.
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页码:359 / 371
页数:12
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