激光焊接锁孔动力学数值模拟

Wenhai Zhang, Jun Zhou, H. Tsai
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引用次数: 6

摘要

建立了数学模型和相关的数值技术,研究了以下几种情况:(1)锁孔的形成和塌陷;(2)气孔的形成及其控制策略;(3)填充金属激光焊接;(4)镀锌钢激光焊接中锌蒸气的逸出。模拟结果表明,焊缝气孔的形成是由两种相互竞争的机制引起的:一是金属液的凝固速度,二是激光能量终止后金属液回填锁眼的速度。模型表明,在锁眼坍塌过程中,可以通过添加填充金属、控制激光尾尾功率或施加电磁力来减小或消除孔隙度。研究发现,与气体金属电弧焊相比,激光焊接中熔池的凝固速度非常快,因此填充金属很难实现熔池成分的均匀化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical modeling of keyhole dynamics in laser welding
Mathematical models and the associated numerical techniques have been developed to study the following cases: (1) the formation and collapse of a keyhole, (2) the formation of porosity and its control strategies, (3) laser welding with filler metals, and (4) the escape of zinc vapor in laser welding of galvanized steel. The simulation results show that the formation of porosity in the weld is caused by two competing mechanisms: one is the solidification rate of the molten metal and the other is the speed that molten metal backfills the keyhole after laser energy is terminated. The models have demonstrated that porosity can be reduced or eliminated by adding filler metals, controlling laser tailing power, or applying an electromagnetic force during keyhole collapse process. It is found that a uniform composition of weld pool is difficult to achieve by filler metals due to very rapid solidification of the weld pool in laser welding, as compared to that in gas metal arc welding.
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