Penetration, porosity prevention mechanism and welding phenomena in laser-arc hybrid welding

S. Katayama, Y. Naito, S. Uchiumi, M. Mizutani
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引用次数: 5

Abstract

Summary form only given. Hybrid welding of stainless steels and aluminum alloys was performed with the heat sources of YAG laser and TIG, and YAG laser and MIG respectively. The effects of welding conditions and melt flows on penetration depth, weld bead geometry and porosity formation tendency were investigated with high-speed video observation and X-ray transmission real-time observation methods. The penetration depth was affected not by the arc current but by the laser power in TIG-YAG hybrid welding of stainless steel. On the other hand, the penetration was affected by the arc current in MIG-YAG hybrid welding of aluminum alloys. In both hybrid-welding processes, the beneficial conditions for the production of the deepest penetration were established. Moreover, the target distances between the laser beam and the electrode or wire exerted a great effect on the penetration and its geometry. The great effect of downward melt flows induced by recoil pressure against the keyhole wall and by surface tension and electromagnetic force due to the arc constriction in the molten pool on the penetration depth and geometry were consequently confirmed. Concerning porosity suppression, in YAG-TIG hybrid welding of stainless steel, no porosity formation was attributed to the generation of no bubbles from the tip of a keyhole produced with a laser beam. On the other hand, at high currents in MIG-YAG hybrid welding of aluminum alloys, disappearance of bubbles from the concave molten pool surface played an important role of reduced porosity
激光-电弧复合焊接中熔透、防气孔机理及焊接现象
只提供摘要形式。采用YAG激光和TIG、YAG激光和MIG两种热源分别对不锈钢和铝合金进行了复合焊接。采用高速视频观察和x射线透射实时观察方法,研究了焊接条件和熔体流动对熔深、焊缝几何形状和气孔形成趋势的影响。不锈钢TIG-YAG复合焊接的熔深不受电弧电流的影响,而受激光功率的影响。另一方面,电弧电流对铝合金MIG-YAG复合焊接的熔深也有影响。在这两种混合焊接工艺中,建立了产生最深熔透的有利条件。此外,激光束与电极或导线之间的目标距离对穿透及其几何形状有很大影响。结果证实了由锁孔壁反冲压力和熔池内电弧收缩引起的表面张力和电磁力引起的向下熔体流动对穿透深度和几何形状的巨大影响。在抑制孔隙率方面,在不锈钢的YAG-TIG复合焊接中,由于激光束产生的锁孔尖端没有产生气泡,因此没有形成孔隙率。另一方面,在大电流下,铝合金MIG-YAG复合焊接时,凹熔池表面气泡的消失对降低气孔率起着重要作用
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