X-ray imaging of complex flow patterns during tungsten inert gas welding
Wu, F. and Falch, K.V. and Ramachandran, S. and Drakopoulos, M. and Mirihanage, W.U. (2022) X-ray imaging of complex flow patterns during tungsten inert gas welding. Journal of Materials Engineering and Performance, 31 (9). 7114–7119. ISSN 1059-9495 (https://doi.org/10.1007/s11665-022-07042-6)
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Abstract
Fusion welding techniques such as tungsten inert gas (TIG) welding process have been widely used in industrial and construction applications. The molten metal flow in the weld pool has a major impact on the microstructure evolution, chemical element distribution and defects formation during solidification, which subsequently determines the performance of the welds. However, limited real-time experimental data availability of internal flow behavior has been considered as a major barrier to achieve a thorough understanding and development of accurate weld pool prediction models. In situ x-ray imaging with the tracking particles facilitated us to visualize the flow evolution during the solid–liquid–solid transformation. Experimental results indicated the flow patterns are progressively becoming complicated with the expansion of the melt pool. The shape of the melt pool also changed according to this flow evolution. Our analysis of flow patterns concerning the underlying variation of the driving forces suggests that gravity-derived buoyancy has a considerable effect on determining fluid flow at the melt pool periphery compared to other regions.
ORCID iDs
Wu, F., Falch, K.V., Ramachandran, S.
ORCID: https://orcid.org/0000-0002-6881-2940, Drakopoulos, M. and Mirihanage, W.U.;
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Item type: Article ID code: 93783 Dates: DateEventSeptember 2022Published20 June 2022Published Online1 May 2022AcceptedSubjects: Technology > Manufactures Department: Faculty of Engineering > Design, Manufacture and Engineering Management > National Manufacturing Institute Scotland Depositing user: Pure Administrator Date deposited: 11 Aug 2025 13:43 Last modified: 31 Jul 2026 00:18 URI: https://strathprints.strath.ac.uk/id/eprint/93783
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