Microstructure engineering during directed energy deposition of Al-0.5Sc-0.5Si using heated build platform

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dc.contributor.author Singh, Amit Kumar
dc.contributor.author Mundada, Yasham
dc.contributor.author Bajaj, Priyanshu
dc.contributor.author Wilms, Markus B.
dc.contributor.author Patil, Jeet P.
dc.contributor.author Mishra, Sushil Kumar
dc.contributor.author Arora, Amit
dc.coverage.spatial United States of America
dc.date.accessioned 2022-12-16T14:53:41Z
dc.date.available 2022-12-16T14:53:41Z
dc.date.issued 2023-03
dc.identifier.citation Singh, Amit Kumar; Mundada, Yasham; Bajaj, Priyanshu; Wilms, Markus B.; Patil, Jeet P.; Mishra, Sushil Kumar and Arora, Amit, "Microstructure engineering during directed energy deposition of Al-0.5Sc-0.5Si using heated build platform", International Journal of Heat and Mass Transfer, DOI: 10.1016/j.ijheatmasstransfer.2022.123679, vol. 202, Mar. 2023. en_US
dc.identifier.issn 0017-9310
dc.identifier.issn 1879-2189
dc.identifier.uri https://doi.org/10.1016/j.ijheatmasstransfer.2022.123679
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/8372
dc.description.abstract Achieving a specific solidification morphology during the directed energy deposition process can be key to desired properties of the deposited part. The careful control of thermal gradient and cooling rates can be utilized to achieve these grain morphologies. The heating of the build platform and post-deposition heat treatment are two ways in which we have shown to control these solidification parameters. Three-dimensional heat transfer and material flow model along with columnar-to-equiaxed transition diagram have been used to model the process and the microstructure evolution during laser directed energy deposition of Al-0.5Sc-0.5Si powder. The computed results have been validated using the experimentally measured thermal cycles and melt pool shape and sizes. The computed thermal gradient and cooling rates are used to predict the solidification morphology compared with the experimentally observed microstructure. For a specific set of deposition parameters, the fraction of equiaxed grains is least in the bottom layers, highest in the middle layers, and reduced in the top layer. The increasing build platform temperature increases the fraction of equiaxed grains in any specific deposited layer. The microhardness of various layers in different specimens as a function of build platform temperature is also shown to be a function of the solidification microstructure. The developed and validated numerical model is able to predict the microstructure evolution and can be a tool for further microstructure engineering during the L-DED process.
dc.description.statementofresponsibility by Amit Kumar Singh, Yasham Mundada, Priyanshu Bajaj, Markus B. Wilms, Jeet P. Patil, Sushil Kumar Mishra and Amit Arora
dc.format.extent vol. 202
dc.language.iso en_US en_US
dc.publisher Elsevier en_US
dc.subject Microstructure engineering en_US
dc.subject Equiaxed grains en_US
dc.subject Microstructure evolution en_US
dc.subject L-DED process en_US
dc.subject Grain morphologies en_US
dc.title Microstructure engineering during directed energy deposition of Al-0.5Sc-0.5Si using heated build platform en_US
dc.type Journal Paper en_US
dc.relation.journal International Journal of Heat and Mass Transfer


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