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Virtual surface morphology generation of Ti-6Al-4V directed energy deposition via conditional generative adversarial network

Taekyeong Kim, Jung Gi Kim, Sangeun Park, Hyoung Seop Kim, Namhun Kim, Hyunjong Ha, Seung-Kyum Choi, Conrad S. Tucker, Hyokyung Sung, Im Doo Jung

2022Virtual and Physical Prototyping17 citationsDOIOpen Access PDF

Abstract

The core challenge in directed energy deposition is to obtain high surface quality through process optimisation, which directly affects the mechanical properties of fabricated parts. However, for expensive materials like Ti-6Al-4V, the cost and time required to optimise process parameters can be excessive in inducing good surface quality. To mitigate these challenges, we propose a novel method with artificial intelligence to generate virtual surface morphology of Ti-6Al-4V parts by given process parameters. A high-resolution surface morphology image generation system has been developed by optimising conditional generative adversarial networks. The developed virtual surface matches experimental cases well with an Frechet inception distance score of 174, in the range of accurate matching. Microstructural analysis with parts fabricated with artificial intelligence guidance exhibited less textured microstructural behaviour on the surface which reduces the anisotropy in the columnar structure. This artificial intelligence guidance of virtual surface morphology can help to obtain high-quality parts cost-effectively.

Topics & Concepts

Materials scienceSurface (topology)Process (computing)Generative grammarArtificial intelligenceDeposition (geology)Matching (statistics)Surface energyRange (aeronautics)Computer scienceComposite materialGeologyMathematicsGeometryPaleontologyOperating systemSedimentStatisticsAdditive Manufacturing and 3D Printing TechnologiesAdditive Manufacturing Materials and ProcessesAdvanced Neural Network Applications
Virtual surface morphology generation of Ti-6Al-4V directed energy deposition via conditional generative adversarial network | Litcius