Author:
Cognigni Flavio,Sgambetterra Mirko,Zucca Guido,Gentile Domenico,Ricci Sara,Testa Gabriel,Rizzi Gabriele,Rossi Marco
Abstract
AbstractIn recent years, there has been a growing interest in the use of additive manufacturing (AM) to fabricate metallic components with tailored microstructures and improved mechanical properties. One of the most promising techniques for the aerospace industry is powder bed fusion-laser beam (PBF-LB). This technique enables the creation of complex shapes and structures with high accuracy and repeatability, which is especially important for the aerospace industry where components require high precision and reliability. However, the impact of the PBF-LB process on microstructural features, such as the grain size distribution and porosity, remains an important area of research since it influences mechanical properties and performance of materials. In this study, a multimodal and multiscale correlative microscopy approach is used to investigate the microstructure of AlSi10Mg components made by PBF-LB. The study found that the correlative microscopy approach involving X-ray images with visual, chemical, and diffraction information coming from optical microscopy (OM), scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD) is highly effective in reaching a more comprehensive understanding of the relationship between the fabrication process and the effective microstructure of PBF-LB fabricated components enabling the optimization of their performance for a wide range of applications.
Funder
Regione Lazio
Ministero dell'Università e della Ricerca
Ministero della Difesa
Publisher
Springer Science and Business Media LLC
Reference47 articles.
1. Zhai Y, Lados DA, LaGoy JL. Additive manufacturing: making imagination the major limitation. J Miner Metals Mater Society (TMS). 2014;66:808–16.
2. DebRoy T, Wei H, Zuback J, Mukherjee T, Elmer J, Milewski J, Beese A, Wilson-Heid A, De A, Zhang W. Additive manufacturing of metallic components—process, structure and properties. Prog Mater Sci. 2018;92:112–224.
3. Yap CY, Chua CK, Dong ZL, Liu ZH, Zhang DQ, Loh LE, Sing SL. Review of selective laser melting: materials and applications. Appl Phys Rev. 2015; 2(4).
4. Seabra M, Azevedo J, Araújo A, Reis L, Pinto E, Alves N, Santos R, Mortágua JP. Selective laser melting (SLM) and topology optimization for lighter aerospace componentes. Proc Struct Integr. 2016;1:289–96.
5. Haase C, Bültmann J, Hof J, Ziegler S, Bremen S, Hinke C, Schwedt A, Prahl U, Bleck W. Exploiting process-related advantages of selective laser melting for the production of high-manganese steel. Materials. 2017;10(1):56.
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