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  4. Influence of aluminium powder aging on Directed Energy deposition
 
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2022
Journal Article
Title

Influence of aluminium powder aging on Directed Energy deposition

Abstract
The use of aluminium alloys for Additive Manufacturing is of high interest for advanced geometries and lightweight applications. In Directed Energy Deposition, a powder stock is processed with a laser beam, which offers a high process flexibility. However, aging of the powder feedstock during storage or after recycling remains fundamentally challenging for aluminium alloys because of their sensitivity to oxidation and porosity. In order to investigate these effects, AlSi10Mg powder batches were aged in different conditions and processed by Directed Energy Deposition. The results showed that powder aging does not significantly change the particle size or morphology, but it introduces more oxygen and hydrogen in the powder. The oxidation of the particles reduces the laser beam absorbance of the powder and increases wetting of the melt pool, which affects the track geometry. A 3.5 to 4.2 times higher porosity was observed in the material deposited from aged powder, which are most likely hydrogen pores caused by the increased hydrogen content in the aged powder. The tensile properties of the parts built with aged powder showed 19.0% lower yield strength, 14.2% lower ultimate strength and 99.2% higher elongation, which are most likely the results of the coarser microstructure and increased porosity.
Author(s)
Da Silva, Adrien
Univ. of Technology, Lulea  
Belelli, Filippo
Politecnico di Milano -POLIMI-  
Lupi, Giorgia
Politecnico di Milano -POLIMI-  
Bruzzo, Francesco
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Brandau, Benedikt
Univ. of Technology, Lulea  
Maier, Lukas
IMR - Metal Powder Technologies
Pesl, Alexander
IMR - Metal Powder Technologies
Frostevarg, Jan
Univ. of Technology, Lulea  
Casati, Riccardo
Politecnico di Milano -POLIMI-  
Lopez, Elena  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Kaplan, Alexander F.H.
Univ. of Technology, Lulea  
Journal
Materials and design  
Project(s)
SAMOA
Funder
EIT RawMaterials GmbH  
Open Access
DOI
10.1016/j.matdes.2022.110677
Language
English
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Keyword(s)
  • Direct Metal Deposition

  • Laser Metal Deposition

  • Laser Powder Bed Fusion

  • Oxidation

  • Porosity

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