Go to:
Logótipo
Comuta visibilidade da coluna esquerda
Você está em: Start > Publications > View > Microstructural evolution of a printed AISI 303 upcycled powder on a dissimilar substrate
Publication

Publications

Microstructural evolution of a printed AISI 303 upcycled powder on a dissimilar substrate

Title
Microstructural evolution of a printed AISI 303 upcycled powder on a dissimilar substrate
Type
Article in International Scientific Journal
Year
2024
Authors
Castanheira, L
(Author)
Other
The person does not belong to the institution. The person does not belong to the institution. The person does not belong to the institution. Without AUTHENTICUS Without ORCID
Reis, A
(Author)
Other
The person does not belong to the institution. The person does not belong to the institution. The person does not belong to the institution. Without AUTHENTICUS Without ORCID
Emadinia, O
(Author)
Other
The person does not belong to the institution. The person does not belong to the institution. The person does not belong to the institution. Without AUTHENTICUS Without ORCID
Journal
Vol. 30
Pages: 2291-2298
ISSN: 2238-7854
Indexing
Publicação em ISI Web of Knowledge ISI Web of Knowledge - 0 Citations
Publicação em Scopus Scopus - 0 Citations
Other information
Authenticus ID: P-010-911
Abstract (EN): Additive manufacturing for new constructions or repairing purposes may deal with the use of dissimilar materials. Hence, the influence of interface between the substrate layer and printed one is crucial. This study delves into the impact of printed layers on the microstructure and hardness of an upcycled AISI 303 alloy produced by Direct Energy Deposition. Chemical composition distribution, phase and grain size evolutions were studied, accompanied with microhardness measurements. Microscopic analysis through chemical composition mapping and using electron backscatter diffraction technique for crystallography analysis revealed that the interface structure is strongly affected by the distribution of chemical composition and the heat received from subsequent printing. That means, a dominant transformation of austenite to martensite/ferrite occurs at the first layer printed on the top of the substrate. This is confirmed by hardness measurements (442 +/- 15 HV0.1). This dominance (global martensite/ferrite distribution of 42%) is attributed to the reduction of Cr, Ni and Mn contents in the first layer, caused by Marangoni convection currents. This study confirms that subsequent printing favors the evolution of martensite/ferrite to austenite (global distribution of 75%) and grain growth, leading to hardness decrease to around 295 +/- 34 HV0.1, leaving small difference with the printed AISI 303 alloy with a hardness of 235 +/- 18 HV0.1.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 8
Documents
We could not find any documents associated to the publication.
Related Publications

Of the same journal

Photocatalytic performance of N-doped TiO(2)nano-SiO2-HY nanocomposites immobilized over cotton fabrics (2019)
Article in International Scientific Journal
Salmon Landi Jr.; Joaquim Carneiro ; Olívia S. G. P. Soares ; Manuel Fernando R. Pereira; Andreia C. Gomes; Artur Ribeiro; António M. Fonseca ; Píer Parpot; Isabel C. Neves
Insights into corrosion behaviour of uncoated Mg alloys for biomedical applications in different aqueous media (2021)
Article in International Scientific Journal
Neves, CS; Sousa, I; Freitas, MA; Moreira, L; Costa, C; Teixeira, JP; Sonia Fraga; Pinto, E; Agostinho Almeida; Scharnagl, N; Zheludkevich, ML; Ferreira, MGS; Tedim, J
Fatigue strength assessment of riveted railway bridge details based on regression analyses combined with probabilistic models (2023)
Article in International Scientific Journal
Correia, J; Moarao, A; Xin, HH; Abilio M P De Jesus; Bittencourt, T; Rui Calçada; Berto, F
Fatigue in advanced materials: advanced methods and applications (2023)
Article in International Scientific Journal
Correia, JAFO; Zhu, SP; Berto, F
Characterization and electrochemical studies of MWCNTs decorated with Ag nanoparticles through pulse reversed current electrodeposition using a deep eutectic solvent for energy storage applications (2021)
Article in International Scientific Journal
Brandao, ATSC; Rosoiu, S; Costa, R; Lazar, OA; Silva, F; Anicai, L; Carlos M Pereira; Enachescu, M

See all (6)

Recommend this page Top
Copyright 1996-2025 © Faculdade de Direito da Universidade do Porto  I Terms and Conditions  I Acessibility  I Index A-Z
Page created on: 2025-08-06 at 00:52:15 | Privacy Policy | Personal Data Protection Policy | Whistleblowing