Physics-informed machine learning models for the prediction of transient temperature distribution of ferritic steel in directed energy deposition by cold metal transfer

Kumar, Amritesh and Sarma, Ritam and Bag, Swarup and Srivastava, V C and Kapil, Sajan (2023) Physics-informed machine learning models for the prediction of transient temperature distribution of ferritic steel in directed energy deposition by cold metal transfer. Science and Technology of Welding and Joining, 28(9) . pp. 914-922.

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Abstract

In-situ monitoring of the additive layer characteristics in the directed energy deposition (DED) process by any contact technology is cumbersome. A well-tested finite element (FE) model is often employed to extract transient temperature distribution during deposition. However, the numerical model pertaining to each deposition attribute is computationally expensive. In the present work, we have generated a dataset through an experimentally validated thermal model, and further multiple machine learning (ML) algorithms are applied to train datasets. Models with an accuracy of more than 99% are utilised for the prediction of transient temperature distribution. The validation of deposition attributes using experiments and numerical model suggests that the physics-informed machine learning models for cold metal transfer can be applied in the DED process.

Item Type:Article
Official URL/DOI:https://10.1080/13621718.2023.2247242
Uncontrolled Keywords:Finite element model, Machine learning algorithms, Cold metal transfer, Arc additive manufacturing
Divisions:Material Science and Technology
ID Code:9462
Deposited By:HOD KRIT
Deposited On:09 Nov 2023 15:48
Last Modified:09 Nov 2023 15:48
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