Materials & Design · 2022 · 70 citations · 94 references
Materials ScienceLaser-powder Bed FusionPowder MetallurgyPhysicsEngineeringMetal PbfNatural SciencesX-ray DiffractionApplied PhysicsCurrent StateDirected Energy DepositionSynchrotron Radiation SourceSynchrotron RadiationWire Arc Additive ManufacturingMetal Additive Manufacturing3D PrintingMicrostructureMetal Processing
Additive Manufacturing (AM) is becoming an important technology for manufacturing of metallic materials. Laser-Powder Bed Fusion (L-PBF), Electron beam-Powder Bed Fusion (E-PBF) and Directed Energy Deposition (DED) have attracted significant interest from both the scientific community and the industry since these technologies offer great manufacturing opportunities for niche applications and complex geometries. Understanding the physics behind the complex and dynamic phenomena occurring during these processes is essential for overcoming the barriers that constrain the metal AM development. In-situ synchrotron X-ray characterization is suitable for investigating the microstructure evolution during processing and provides new profound insights. Here, we provide an overview of the research on metal PBF and DED using in-situ synchrotron X-ray imaging, diffraction and small-angle scattering, highlighting the state of the art, the instrumentation, the challenges and the gaps in knowledge that need to be filled. We aim at presenting a scientific roadmap for in-situ synchrotron analysis of metal PBF and DED where future challenges in instrumentation such as the development of experimental stations, sample environments and detectors as well as the need for further application oriented research are included.
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Additive manufacturing of metals
Dirk Herzog, Vanessa Seyda, Eric Wycisk et al. · Acta Materialia · 2016 · 4.4K citations · Full text
Stefan Leuders, M. Thöne, Andre Riemer et al. · International Journal of Fatigue · 2012 · 1.4K citations
Materials Science, Materials Engineering, Advanced Laser Processing +11