Challenges in dynamic heat source modeling in high-power laser beam welding

被引:1
|
作者
Bachmann, Marcel [1 ]
Artinov, Antoni [1 ]
Meng, Xiangmeng [1 ]
Putra, Stephen Nugraha [1 ]
Rethmeier, Michael [1 ,2 ,3 ]
机构
[1] Bundesanstalt Mat Forsch & prufung BAM, Unter Eichen 87, D-12205 Berlin, Germany
[2] Tech Univ Berlin, Inst Machine Tools & Factory Management, Pascalstr 8-9, D-10587 Berlin, Germany
[3] Fraunhofer Inst Prod Syst & Design Technol, Joining & Coating Technol, Pascalstr 8-9, D-10587 Berlin, Germany
关键词
laser beam welding; laser energy distribution; ray tracing; numerical modeling; PHASE-CHANGE; KEYHOLE; ABSORPTION;
D O I
10.2351/7.0001079
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The amount of absorbed energy in the keyhole as well as its spatial and temporal distribution is essential to model the laser beam welding process. The recoil pressure, which develops because of the evaporation process induced by the absorbed laser energy at the keyhole wall, is a key determining factor for the macroscopic flow of the molten metal in the weld pool during high-power laser beam welding. Consequently, a realistic implementation of the effect of laser radiation on the weld metal is crucial to obtain reliable and accurate simulation results. In this paper, we discuss manyfold different improvements on the laser-material interaction, namely, the ray tracing method, in the numerical simulation of the laser beam welding process. The first improvement relates to locating the exact reflection points in the ray tracing method using a so-called cosine condition in the determination algorithm for the intersection of reflected rays and the keyhole surface. A second correction refers to the numerical treatment of the Gaussian distribution of the laser beam, whose beam width is defined by a decay of the laser intensity by a factor of 1/e(2), thus ignoring around 14% of the total laser beam energy. In the third step, the changes in the laser radiation distribution in the vertical direction were adapted by using different approximations for the converging and the diverging regions of the laser beam, thus mimicking the beam caustic. Finally, a virtual mesh refinement was adopted in the ray tracing routine. The obtained numerical results were validated with experimental measurements.
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页数:8
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