Numerical and experimental study of the variation of keyhole depth with an aluminum alloy (AA1050)

被引:4
|
作者
Meena, Akash [1 ]
Lassila, Andreas Andersson [2 ]
Lonn, Dan [2 ]
Salomonsson, Kent [1 ]
Wang, Wei [1 ]
Nielsen, Chris Valentin [1 ]
Bayat, Mohamad [1 ]
机构
[1] Tech Univ Denmark, Dept Civil & Mech Engn, DK-2800 Lyngby, Denmark
[2] Univ Skovde, Box 408, SE-54128 Skovde, Sweden
关键词
Multiphysics simulation; Laser welding; Incident angle; Melt pool; Keyhole depth and width; INDUCED POROSITY; FLUID-FLOW; LASER; SIMULATION; EMISSIONS; TRANSPORT; MECHANISM; TITANIUM; DYNAMICS; MODEL;
D O I
10.1016/j.jajp.2024.100196
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The keyhole depth is a key measurement characteristic in the laser welding of busbar to battery tabs in battery packs for electric vehicles (EV), as it directly affects the quality of the weld. In this work, experiments are carried out with controlled and adjusted laser power and feed rate parameters to investigate the influence on the keyhole width, keyhole depth and porosities. A 3D numerical model of laser keyhole welding of an aluminum alloy (A1050) has been developed to describe the porosity formation and the keyhole depth variation. A new integration model of the recoil pressure and the rate of evaporation model is implemented which is closer to the natural phenomena as compared to the conventional methods. Additionally, major physical forces are employed including plume formation, upward vapor pressure and multiple reflection in the keyhole. The results show that keyhole depth is lower at higher feed rate, while lower feed rates result in increased keyhole depth. This study reveals that low energy densities result in an unstable keyhole with high spattering, exacerbated by increased laser power. Mitigating incomplete fusion is achieved by elevating laser energy density. The findings emphasize the critical role of keyhole depth in optimizing laser welding processes for applications like busbar-to-battery tab welding.
引用
收藏
页数:13
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