A precise control of the Mg content in Al–Mg alloys is essential to obtain predictable mechanical properties but the processing of Al–Mg alloys often suffers Mg losses due to Mg evaporation and oxidation. A new high strength Al–Mg–Sc alloy designed for LPBF (laser powder bed fusion) processing has been developed here, where Mg losses are effectively prevented by the addition of a low amount of calcium. A LPBF processing window which results in built parts with a 99.7% relative density and no detectable loss of Mg has been identified. The as-built microstructure of the new Calciscal® alloy, studied by transmission electron microscopy, is found to comprise areas of fine equiaxed grains and areas of coarser grains, with many Al4Ca precipitates...
Laser powder bed fusion (LPBF) is a powder bed additive manufacturing technology that allows the pr...
The demand for high-performance aluminum components drives research into the design of novel alloys ...
A crack-free, strong and ductile Al-Cu-Mg-Ag alloy with TiB2 particles was successfully fabricated w...
Only few medium: and high-strength aluminium alloys can be processed by Laser Powder Bed Fusion with...
The number of available materials for Laser Powder Bed Fusion is still limited due to the poor proce...
The increasing potential for additive manufacturing technology continuously drives the need for prin...
Demands for high strength aluminum alloys processed by Laser Powder Bed Fusion (LPBF) are high and k...
Additive manufacturing of aluminium alloys by laser powder bed fusion (LPBF) has been notionally res...
Abstract: A key-factor for the industrial implementation of beam-based additive manufacturing techno...
Despite additive manufacturing processes are already widely used in several industrial applications,...
The effects of microalloying with Mg (0–0.23 wt%) on the microstructural evolution and mechanical pr...
The expansion of the material library for the laser powder bed fusion (LPBF) process is essential fo...
Laser powder bed fusion (LPBF) is a powder bed additive manufacturing technology that allows the pr...
The demand for high-performance aluminum components drives research into the design of novel alloys ...
A crack-free, strong and ductile Al-Cu-Mg-Ag alloy with TiB2 particles was successfully fabricated w...
Only few medium: and high-strength aluminium alloys can be processed by Laser Powder Bed Fusion with...
The number of available materials for Laser Powder Bed Fusion is still limited due to the poor proce...
The increasing potential for additive manufacturing technology continuously drives the need for prin...
Demands for high strength aluminum alloys processed by Laser Powder Bed Fusion (LPBF) are high and k...
Additive manufacturing of aluminium alloys by laser powder bed fusion (LPBF) has been notionally res...
Abstract: A key-factor for the industrial implementation of beam-based additive manufacturing techno...
Despite additive manufacturing processes are already widely used in several industrial applications,...
The effects of microalloying with Mg (0–0.23 wt%) on the microstructural evolution and mechanical pr...
The expansion of the material library for the laser powder bed fusion (LPBF) process is essential fo...
Laser powder bed fusion (LPBF) is a powder bed additive manufacturing technology that allows the pr...
The demand for high-performance aluminum components drives research into the design of novel alloys ...
A crack-free, strong and ductile Al-Cu-Mg-Ag alloy with TiB2 particles was successfully fabricated w...