Elongated cavities during keyhole laser welding

During laser beam deep penetration welding, the characteristic keyhole occurs that enables efficient energy absorption due to multiple reflections. Since this welding mode usually shows high dynamic behaviour, often a high amount of weld imperfections like spattering or porosity occur. Elongated key...

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Main Authors: Joerg Volpp, Jan Frostevarg
Format: Article
Language:English
Published: Elsevier 2021-08-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127521003889
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spelling doaj-766b61b0ad494a538e5eb20c96ff349b2021-06-17T04:45:21ZengElsevierMaterials & Design0264-12752021-08-01206109835Elongated cavities during keyhole laser weldingJoerg Volpp0Jan Frostevarg1Corresponding author at: Associate Professor, Luleå University of Technology, Department of Engineering Sciences and Mathematics, SE-971 87 Luleå, Sweden. Tel.:+46 920 493969.; Department of Engineering Sciences and Mathematics, Luleå University of Technology, 971 87 Luleå, SwedenDepartment of Engineering Sciences and Mathematics, Luleå University of Technology, 971 87 Luleå, SwedenDuring laser beam deep penetration welding, the characteristic keyhole occurs that enables efficient energy absorption due to multiple reflections. Since this welding mode usually shows high dynamic behaviour, often a high amount of weld imperfections like spattering or porosity occur. Elongated keyholes during buttonhole, a.k.a donut welding, have shown the possibility to create smooth welding tracks when controlled variations of energy input were induced, e.g. beam oscillation. It was observed that the elongated keyholes can maintain themselves due to the balancing effects of the melt pool surface tension, which can form a catenoid shape that does not require any additional forces to be stable. Basic theoretical descriptions of the catenoid shape keyholes were derived. However, the complex system requires a more detailed investigation of the effect of the metal plume and the melt flows in order to explain the opening and maintenance effects of the elongated keyholes.Therefore, this work examined different modes of elongated keyholes, comparing traditional non-oscillating keyholes to keyholes formed by different beam scanning strategies. Analysis was made mainly by observations with high-speed-imaging and theoretical considerations to explain the phenomena of elongated keyholes. The observations showed that extended keyholes are not necessarily related to a reduced occurrence of imperfections and not either to the formation of perfect catenoid shapes. The keyhole front is deformed where the laser beam impacts and the rear wall is impacted where the vapour plume strikes. The opening of an elongated keyhole is likely related to the keyhole vapour plume that pushes the keyhole rear wall rearwards, while the non-affected rear wall parts do not collapse the keyhole due to the balancing nature of the second curvature of the rear wall.http://www.sciencedirect.com/science/article/pii/S0264127521003889Donut weldingButtonhole weldingMetal vapour pressureBeam oscillationHigh speed imaging
collection DOAJ
language English
format Article
sources DOAJ
author Joerg Volpp
Jan Frostevarg
spellingShingle Joerg Volpp
Jan Frostevarg
Elongated cavities during keyhole laser welding
Materials & Design
Donut welding
Buttonhole welding
Metal vapour pressure
Beam oscillation
High speed imaging
author_facet Joerg Volpp
Jan Frostevarg
author_sort Joerg Volpp
title Elongated cavities during keyhole laser welding
title_short Elongated cavities during keyhole laser welding
title_full Elongated cavities during keyhole laser welding
title_fullStr Elongated cavities during keyhole laser welding
title_full_unstemmed Elongated cavities during keyhole laser welding
title_sort elongated cavities during keyhole laser welding
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2021-08-01
description During laser beam deep penetration welding, the characteristic keyhole occurs that enables efficient energy absorption due to multiple reflections. Since this welding mode usually shows high dynamic behaviour, often a high amount of weld imperfections like spattering or porosity occur. Elongated keyholes during buttonhole, a.k.a donut welding, have shown the possibility to create smooth welding tracks when controlled variations of energy input were induced, e.g. beam oscillation. It was observed that the elongated keyholes can maintain themselves due to the balancing effects of the melt pool surface tension, which can form a catenoid shape that does not require any additional forces to be stable. Basic theoretical descriptions of the catenoid shape keyholes were derived. However, the complex system requires a more detailed investigation of the effect of the metal plume and the melt flows in order to explain the opening and maintenance effects of the elongated keyholes.Therefore, this work examined different modes of elongated keyholes, comparing traditional non-oscillating keyholes to keyholes formed by different beam scanning strategies. Analysis was made mainly by observations with high-speed-imaging and theoretical considerations to explain the phenomena of elongated keyholes. The observations showed that extended keyholes are not necessarily related to a reduced occurrence of imperfections and not either to the formation of perfect catenoid shapes. The keyhole front is deformed where the laser beam impacts and the rear wall is impacted where the vapour plume strikes. The opening of an elongated keyhole is likely related to the keyhole vapour plume that pushes the keyhole rear wall rearwards, while the non-affected rear wall parts do not collapse the keyhole due to the balancing nature of the second curvature of the rear wall.
topic Donut welding
Buttonhole welding
Metal vapour pressure
Beam oscillation
High speed imaging
url http://www.sciencedirect.com/science/article/pii/S0264127521003889
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