Numerical Study of Molten Metal Melt Pool Behaviour during Conduction-mode Laser Spot Melting
Amin Ebrahimi, Chris R. Kleijn, Ian M. Richardson

TL;DR
This study investigates how dynamic energy flux adjustments and variable material properties influence the oscillatory behaviour and shape of melt pools during conduction-mode laser spot melting, highlighting the importance of realistic modelling.
Contribution
It introduces a numerical approach that accounts for dynamic energy flux and variable thermophysical properties, improving melt pool behaviour predictions.
Findings
Adjusting energy flux impacts melt pool oscillations.
Changing material properties significantly alters melt pool dynamics.
Deformable interface assumptions yield different results than non-deformable ones.
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…
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