研究机械性能和碳含量对高强度薄钢板激光焊接冷裂纹的影响

IF 1.6 4区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Hajime Ashida, Hiroki Fujimoto
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引用次数: 0

摘要

本研究报告了一个焊缝冷裂纹案例,它是在激光焊接高强度钢板的过程中,由凹坑内凝固裂纹引起的。在这项研究中,我们的目标是确定影响冷裂纹的因素,冷裂纹源于凹坑内的凝固裂纹。为此,我们对钢板的机械性能(抗拉强度:0.6 至 1.5 GPa)和化学成分(碳含量:0.20 至 0.55%)进行了单独调整。评估方法是在涂过油的钢板上以缝合方式进行激光焊接,并改变焊接长度。评估的重点是发生冷裂纹的最大焊接长度(LMAX)。结果表明,虽然钢板的抗拉强度越高,LMAX 就越小,但影响仍然有限。相反,钢板的含碳量对冷裂纹的影响很大;含碳量为 0.30% 和 0.45% 时的 LMAX 远远大于含碳量为 0.20% 时的 LMAX。然而,在含碳量为 0.55% 时出现了不寻常的现象,尽管焊接金属显著硬化,但 LMAX 却小于含碳量为 0.45% 时的 LMAX。据推测,出现这种现象的原因是,随着马氏体转变起始温度的降低,焊缝中的拉伸残余应力减小,而转变过程中的膨胀应变随着碳含量的增加而增大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of the effects of mechanical properties and carbon content on cold cracking in laser welds of high-strength thin steel sheets

This study reports a case of cold cracking along welds, which arises from solidification cracking within the crater during the laser welding of high-strength steel sheets. In this investigation, we aimed to delineate the factors influencing cold cracking that originates from solidification cracking in the crater. This was achieved by using steel sheets whose mechanical properties (tensile strength: 0.6 to 1.5 GPa) and chemical composition (carbon content: 0.20 to 0.55%) were individually adjusted. The evaluation method involved performing laser welding in a stitch pattern on an oiled steel sheet, with variations in welding length. The evaluation focused on the maximum welding length at which cold cracking occurred (LMAX). The results indicated that while a high tensile strength of the steel sheet marginally increased the LMAX, the impact remained limited. Conversely, the carbon content of the steel sheet significantly influenced cold cracking; the LMAX for carbon contents of 0.30% and 0.45% was substantially greater than that for 0.20%. However, an unusual behavior was observed at a carbon content of 0.55%, where the LMAX was smaller than that for 0.45%, despite the significant hardening of the weld metal. This phenomenon was hypothesized to occur because the tensile residual stresses in the welds decreased as martensitic transformation starting temperature lowered and the expansion strain during the transformation increased with higher carbon content.

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来源期刊
Isij International
Isij International 工程技术-冶金工程
CiteScore
3.40
自引率
16.70%
发文量
268
审稿时长
2.6 months
期刊介绍: The journal provides an international medium for the publication of fundamental and technological aspects of the properties, structure, characterization and modeling, processing, fabrication, and environmental issues of iron and steel, along with related engineering materials.
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