The present work explores the possibility of employing the selective laser melting technique to produce parts in AlSi9Cu3 alloy. This alloy, currently prepared by high-pressure dye casting and intended for automotive application, may benefit from the refined microstructure commonly induced by additive manufacturing techniques. The process parameters were systematically varied to achieve full density, and the resulting defects were studied. Thereafter, microstructural features were analyzed, revealing that the high cooling rate, induced by the process, caused a large supersaturation of the aluminum matrix and the refinement of the eutectic structure. Again, the precipitation of the reinforcing ? phase provided numerous nucleation sites. These features were found to be related to the mechanical behavior of the SLMed AlSi9Cu3 alloy, which outperformed the conventional casted alloy in terms of elongation to failure and strain hardening rate both in the as-built and heat treated conditions.

Selective laser melting of high-strength primary AlSi9Cu3 alloy: Processability, microstructure, and mechanical properties

Fiocchi J
Primo
;
Biffi C A
;
Tuissi A
Ultimo
2020

Abstract

The present work explores the possibility of employing the selective laser melting technique to produce parts in AlSi9Cu3 alloy. This alloy, currently prepared by high-pressure dye casting and intended for automotive application, may benefit from the refined microstructure commonly induced by additive manufacturing techniques. The process parameters were systematically varied to achieve full density, and the resulting defects were studied. Thereafter, microstructural features were analyzed, revealing that the high cooling rate, induced by the process, caused a large supersaturation of the aluminum matrix and the refinement of the eutectic structure. Again, the precipitation of the reinforcing ? phase provided numerous nucleation sites. These features were found to be related to the mechanical behavior of the SLMed AlSi9Cu3 alloy, which outperformed the conventional casted alloy in terms of elongation to failure and strain hardening rate both in the as-built and heat treated conditions.
2020
Istituto di Chimica della Materia Condensata e di Tecnologie per l'Energia - ICMATE
Inglese
191
108581 -1
108581 -11
11
https://www.sciencedirect.com/science/article/pii/S0264127520301155?via=ihub
Sì, ma tipo non specificato
Al alloys
AlSi9Cu3
Mechanical properties
Microstructure
Phase composition
Selective laser melting
Highlights: o AlSi9Cu3 alloy was produced by selective laser melting. o Process optimization allowed to obtain fully dense samples, with a limited amount of defects. o The high cooling speed induced a refinement of microstructure and influenced the precipitation processes. o The mechanical properties of SLMed alloy are higher than the ones of the cast alloy. o Heat treatment allowed to obtain a balanced set of mechanical properties thanks to microstructural modifications.
No
3
info:eu-repo/semantics/article
262
Fiocchi, J; Biffi, CARLO ALBERTO; Tuissi, A
01 Contributo su Rivista::01.01 Articolo in rivista
open
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Descrizione: Selective laser melting of high-strength primary AlSi9Cu3 alloy:Processability, microstructure, and mechanical properties
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/408464
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