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Analytical model for balling defects in laser melting using rivulet theory and solidification

Title: Analytical model for balling defects in laser melting using rivulet theory and solidification
Authors: Taylor, Z.; Reddy, T.; Fitzpatrick, M.; Kim, K.; Li, W.; Leung, C. L. A.; Lee, P. D.; Bertsch, K. M.; Dresselhaus-Marais, L.
Contributors: Lawrence Livermore National Laboratory; Engineering and Physical Sciences Research Council; Royal Academy of Engineering
Source: Journal of Applied Physics ; volume 139, issue 2 ; ISSN 0021-8979 1089-7550
Publisher Information: AIP Publishing
Publication Year: 2026
Description: In laser welding and additive manufacturing communities, the balling (humping) defect is primarily attributed to the Plateau–Rayleigh fluid instability (PRI) with a few authors suggesting fluid jetting and volume conservation as alternative mechanisms. As analytical descriptions of these mechanisms are unavailable, combining them into a single formalism is unfeasible. We present a new model of PRI with higher accuracy, accounting for competition with solidification, to compare the expected behavior with known experimental trends when fluid jetting is neglected. We adapt a rivulet instability model from fluid physics to account for the stabilizing effects of the substrate, which the traditional cylindrical-jet geometry does not account for and estimate the instability growth rate. Our model yields a continuous transition from non-balling to balling hitherto lacking in current literature and predicts instability growth at higher wavelengths with strong sensitivity to the solidification front curvature. While the fluid surface is most unstable for shallow melt pools, the absolute magnitude of balling relevant to printing defects scales with melt pool depth and has a maximum for a given melt pool geometry. Synchrotron-based x-ray radiography of thin samples indicates that PRI growth rates and solidification can be comparable in magnitude and thus compete, as we find in this work. We predict that deviations between model predictions and our experimental results demonstrate the importance of fluid flows and heat transport in the balling process. Our experiments further demonstrate at least one mechanism by which the melt pool length and the balling wavelength are not equivalent, as commonly claimed.
Document Type: article in journal/newspaper
Language: English
DOI: 10.1063/5.0263633
DOI: 10.1063/5.0263633/20868781/024902_1_5.0263633.pdf
Availability: https://doi.org/10.1063/5.0263633; https://pubs.aip.org/aip/jap/article-pdf/doi/10.1063/5.0263633/20868781/024902_1_5.0263633.pdf
Rights: https://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.DA39FE
Database: BASE