The effect of shielding gas composition in CO 2 laser—gas metal arc hybrid welding
H-B Chae, Cheolhee Kim, J-H Kim, Sehun Rhee
Abstract
H-B Chae, Cheolhee Kim, J-H Kim, Sehun Rhee
Abstract
In carbon dioxide (CO 2 ) laser—gas metal arc hybrid welding, a shielding gas is supplied to isolate the molten metal from the ambient air, suppress the laser-induced plasma, remove the plume out of the keyhole, and stabilize the metal transfer. In this study, a shielding gas consisting of helium, argon, and CO 2 was used, and its effects on the composition of the welding phenomena, such as behaviours of laser-induced plasma generation, molten pool flow, and droplet transfer in gas metal arc welding, were investigated. High-speed video observation was used to investigate the welding phenomena inside the arc regime. Consequently, helium was found to have a dominant role in suppressing laser-induced plasma; minimum helium content at a laser power of 8 kW was suggested for laser autogenous and hybrid welding. Argon and CO 2 govern the droplet transfer and arc stability. A 12 per cent addition of CO 2 stabilizes the metal transfer and eliminates undercut caused by insufficient wetting of molten metal.
OpenAlex reports 32 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
In carbon dioxide (CO 2 ) laser—gas metal arc hybrid welding, a shielding gas is supplied to isolate the molten metal from the ambient air, suppress the laser-induced plasma, remove the plume out of the keyhole, and stabilize the metal transfer. In this study, a shielding gas consisting of helium, argon, and CO 2 was used, and its effects on the composition of the welding phenomena, such as behaviours of laser-induced plasma generation, molten pool flow, and droplet transfer in gas metal arc welding, were investigated. High-speed video observation was used to investigate the welding phenomena inside the arc regime. Consequently, helium was found to have a dominant role in suppressing laser-induced plasma; minimum helium content at a laser power of 8 kW was suggested for laser autogenous and hybrid welding. Argon and CO 2 govern the droplet transfer and arc stability. A 12 per cent addition of CO 2 stabilizes the metal transfer and eliminates undercut caused by insufficient wetting of molten metal.
Key concepts: Shielding gas, Plasma arc welding, Gas metal arc welding, Welding, Materials science, Argon, Gas tungsten arc welding, Laser beam welding