Wire-arc additive manufacturing (WAAM) technology has been considered as a suitable method for manufacturing large components of aluminum alloys due to its high deposition rate and material utilization. However, the coarse grain size, high porosity and poor mechanical properties of as-deposited aluminum alloys have limited their further development. In this study, a novel hybrid additive manufacturing (HAM) technology combining WAAM and friction stir processing (FSP) has been developed, and a gradient microstructure 2319 aluminum alloy with ultrafine grains-equiaxed grains-columnar grains was successfully fabricated. The microstructure evolution and mechanical properties also have been investigated in this study. The grain size distribution...
Friction stir processing (FSP) is an energy efficient solid-state material processing technique for ...
Ultra-high strength 7xxx series aluminum alloys are widely used in aerospace applications due to the...
Wire and arc additive manufacturing (WAAM) of metallic materials is expected to become part of the n...
This work analyzes a novel solid-state manufacturing approach of a friction stir additive manufactur...
Additive manufacturing of Al alloys by fusion-based processes often leads to higher thermal gradient...
Additive manufacturing of Al alloys by fusion-based processes often leads to higher thermal gradient...
As an important part of the additive manufacturing technology, wire arc additive manufacture (WAAM) ...
In this study, the high strength-ductility properties of wire-arc additive manufactured (WAAM) Al-Mg...
Additive friction stir deposition (AFSD) is a solid-state additive manufacturing (AM) technique that...
Processing of aluminum alloys by wire arc additive manufacturing (WAAM) gained significant attention...
Additive manufacturing (AM) processes such as Wire-Arc Additive Manufacturing (WAAM) are highly flex...
The development of wire arc additive manufacturing (WAAM) provides a new solution for manufacturing ...
Applying inter-layer rolling to the wire+arc additively manufacturing (WAAM) process with increasing...
Wire arc additive manufacturing (WAAM) of aluminium alloys is a rising technique for manufacturing l...
Additive Friction Stir-Deposition (AFS-D) is a transformative, metallic additive manufacturing (AM) ...
Friction stir processing (FSP) is an energy efficient solid-state material processing technique for ...
Ultra-high strength 7xxx series aluminum alloys are widely used in aerospace applications due to the...
Wire and arc additive manufacturing (WAAM) of metallic materials is expected to become part of the n...
This work analyzes a novel solid-state manufacturing approach of a friction stir additive manufactur...
Additive manufacturing of Al alloys by fusion-based processes often leads to higher thermal gradient...
Additive manufacturing of Al alloys by fusion-based processes often leads to higher thermal gradient...
As an important part of the additive manufacturing technology, wire arc additive manufacture (WAAM) ...
In this study, the high strength-ductility properties of wire-arc additive manufactured (WAAM) Al-Mg...
Additive friction stir deposition (AFSD) is a solid-state additive manufacturing (AM) technique that...
Processing of aluminum alloys by wire arc additive manufacturing (WAAM) gained significant attention...
Additive manufacturing (AM) processes such as Wire-Arc Additive Manufacturing (WAAM) are highly flex...
The development of wire arc additive manufacturing (WAAM) provides a new solution for manufacturing ...
Applying inter-layer rolling to the wire+arc additively manufacturing (WAAM) process with increasing...
Wire arc additive manufacturing (WAAM) of aluminium alloys is a rising technique for manufacturing l...
Additive Friction Stir-Deposition (AFS-D) is a transformative, metallic additive manufacturing (AM) ...
Friction stir processing (FSP) is an energy efficient solid-state material processing technique for ...
Ultra-high strength 7xxx series aluminum alloys are widely used in aerospace applications due to the...
Wire and arc additive manufacturing (WAAM) of metallic materials is expected to become part of the n...