Novel Magnesium Nanocomposite for Wire-Arc Directed Energy Deposition

Author:

Dieringa Hajo1ORCID,Nienaber Maria1ORCID,Giannopoulou Danai1,Isakovic Jonas1,Bohlen Jan1,Kujur Milli Suchita1,Ben Khalifa Noomane12,Klein Thomas3,Gneiger Stefan3ORCID

Affiliation:

1. Institute of Material and Process Design, Helmholtz-Zentrum Hereon, Max-Planck-Str. 1, 21502 Geesthacht, Germany

2. Institut für Produkt- und Prozessinnovation (PPI), Leuphana Universität Lüneburg, Universitätsallee 1, Gebäude 12, 21335 Lüneburg, Germany

3. LKR Light Metals Technologies, AIT Austrian Institute of Technology, Lamprechtshausenerstraße 61, 5282 Braunau am Inn—Ranshofen, Austria

Abstract

Magnesium alloys play an essential role in metallic lightweight construction for modern mobility applications due to their low density, excellent specific strength, and very good castability. For some years now, degradable implants have also been made from magnesium alloys, which, thanks to this special functionality, save patients a second surgery for explantation. New additive manufacturing processes, which are divided into powder-based and wire-based processes depending on the feedstock used, can be utilized for these applications. Therefore, magnesium alloys should also be used here, but this is hardly ever implemented, and few literature reports exist on this subject. This is attributable to the high affinity of magnesium to oxygen, which makes the use of powders difficult. Therefore, magnesium wires are likely to be used. In this paper, a magnesium-based nanocomposite wire is made from an AM60 (Mg-6Al-0.4Mn) (reinforced with 1 wt% AlN nanoparticles and containing calcium to reduce flammability), using a high-shear process and then extruded into wires. These wires are then used as feedstock to build up samples by wire-arc directed energy deposition, and their mechanical properties and microstructure are examined. Our results show that although the ductility is reduced by adding calcium and nanoparticles, the yield strength in the welding direction and perpendicular to it is increased to 131 MPa.

Funder

Federal Ministry for Economic Affairs and Climate Action in Germany

European Commission within the framework INTERREG V-A Austria–Czech Republic

Publisher

MDPI AG

Subject

General Materials Science

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