Laser powder bed fusion of high solute Al-Zn-Mg alloys: Processing, characterisation and properties

Additive manufacturing of aluminium alloys by laser powder bed fusion (LPBF) has been notionally restricted to a small number of alloy compositions to avoid hot cracking and excessive porosity. In the present work, three unique alloy compositions from the Al-Zn-Mg system with high solute content (Zn...

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Veröffentlicht in:Materials & design 2020-11, Vol.196, p.109183, Article 109183
Hauptverfasser: Babu, A.P., Kairy, S.K., Huang, A., Birbilis, N.
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Sprache:eng
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Zusammenfassung:Additive manufacturing of aluminium alloys by laser powder bed fusion (LPBF) has been notionally restricted to a small number of alloy compositions to avoid hot cracking and excessive porosity. In the present work, three unique alloy compositions from the Al-Zn-Mg system with high solute content (Zn > 10 wt% and Mg > 2 wt%) were designed in pursuit of attaining high strength from directly LPBF prepared Al-alloys. The high solute alloys were successfully fabricated, and in-depth microstructural characterisation and phase identification revealed the presence of a new quasicrystalline phase, which was named P-phase. The hardness of the alloys were higher than the existing as-fabricated Al-Zn-Mg alloys and comparable to conventionally fabricated high strength wrought aluminium alloys, however, the as-built tensile properties revealed brittleness. This study presents an insight into the possibilities of fabricating high strength Al-Zn-Mg alloys without expensive additions such as Sc or Zr, through selective laser melting. [Display omitted] •Successful fabrication of high solute Al-Zn-Mg alloy without expensive additions such as Sc or Zr processed through SLM.•The coexistence or clustering of particles was evidenced due to complex solidification process.•Previously unreported, new quasicrystalline phase named as P-phase was found with a quasi-lattice constant of 0.529 nm.
ISSN:0264-1275
1873-4197
DOI:10.1016/j.matdes.2020.109183