Print Email Facebook Twitter Numerical study of molten metal melt pool behaviour during conduction-mode laser spot melting Title Numerical study of molten metal melt pool behaviour during conduction-mode laser spot melting Author Ebrahimi, Amin (TU Delft Team Marcel Hermans) Kleijn, C.R. (TU Delft ChemE/Transport Phenomena) Richardson, I.M. (TU Delft Team Marcel Hermans) Date 2021 Abstract Molten metal melt pools are characterised by highly non-linear responses, which are very sensitive to imposed boundary conditions. Temporal and spatial variations in the energy flux distribution are often neglected in numerical simulations of melt pool behaviour. Additionally, thermo-physical properties of materials are commonly changed to achieve agreement between predicted melt-pool shape and experimental post-solidification macrograph. Focusing on laser spot melting in conduction mode, we investigated the influence of dynamically adjusted energy flux distribution and changing thermo-physical material properties on melt pool oscillatory behaviour using both deformable and non-deformable assumptions for the gas-metal interface. Our results demonstrate that adjusting the absorbed energy flux affects the oscillatory fluid flow behaviour in the melt pool and consequently the predicted melt-pool shape and size. We also show that changing the thermo-physical material properties artificially or using a non-deformable surface assumption lead to significant differences in melt pool oscillatory behaviour compared to the cases in which these assumptions are not made. Subject Laser material processingMelt pool behaviourThermocapilary flowFlow instabilitiesFree surface oscillation To reference this document use: http://resolver.tudelft.nl/uuid:e2f84a5b-0297-4a5e-b8c8-68d9717e76f7 DOI https://doi.org/10.1088/1361-6463/abca62 ISSN 0022-3727 Source Journal of Physics D: Applied Physics, 54 (10) Part of collection Institutional Repository Document type journal article Rights © 2021 Amin Ebrahimi, C.R. Kleijn, I.M. Richardson Files PDF Ebrahimi_2021_JPhysD.pdf 7.27 MB Close viewer /islandora/object/uuid:e2f84a5b-0297-4a5e-b8c8-68d9717e76f7/datastream/OBJ/view