This study investigates the feasibility of achieving high deposition rate using wire + arc additive manufacturing in stainless steel to reduce lead time and cost of manufacturing. The pulse MIG welding technique with a tandem torch was used for depositing martensitic stainless steel 17-4 PH. The mechanical and metallurgical properties of the manufactured component were analysed to evaluate the limitations and the extent to which the rate of deposition reaches a maximum without any failure or defect being evident in the manufactured component. Deposition rate of 9.5 kg/hr was achieved. The hardness was matched for the as deposited condition
Wire Arc Additive Manufacturing (WAAM) uses an arc welding process and consumable filler wire to dep...
In this thesis, investigations on depositions of similar, dissimilar and functionally graded materia...
Wire + arc additive manufacture (WAAM) is suitable for building large-scale components with high dep...
Additive manufacturing (AM) is considered to be part of the 4th Industrial Revolution in digital era...
Although Additive Manufacturing implementation is rapidly growing, industrial sectors are demanding ...
Shaped Metal Deposition (SMD) in additive layered manufacturing technique is a promising alternative...
Wire arc additive manufacturing (WAAM) direct energy deposition is used to process two different dup...
Depositing large components (>10 kg) in titanium, aluminium, steel and other metals is possible usin...
Whenever there is a need for manufacturing products with higher deposition rates (usually more than ...
This thesis describes advances in aspects of deposition process control, mechanical performance opti...
The increasing developed complexity parts geometry demanded by the industry nowadays, represents a c...
Additive Manufacturing (AM) has drawn abundant attention over the past decades in the manufacturing ...
Wire + Arc Additive Manufacture (WAAM) is receiving increasing attention as it offers a way to fabri...
Wire arc additive manufacturing (WAAM) has been considered as a promising technology for the product...
Wire-arc directed energy deposition (DED) is suitable for depositing large-scale metallic components...
Wire Arc Additive Manufacturing (WAAM) uses an arc welding process and consumable filler wire to dep...
In this thesis, investigations on depositions of similar, dissimilar and functionally graded materia...
Wire + arc additive manufacture (WAAM) is suitable for building large-scale components with high dep...
Additive manufacturing (AM) is considered to be part of the 4th Industrial Revolution in digital era...
Although Additive Manufacturing implementation is rapidly growing, industrial sectors are demanding ...
Shaped Metal Deposition (SMD) in additive layered manufacturing technique is a promising alternative...
Wire arc additive manufacturing (WAAM) direct energy deposition is used to process two different dup...
Depositing large components (>10 kg) in titanium, aluminium, steel and other metals is possible usin...
Whenever there is a need for manufacturing products with higher deposition rates (usually more than ...
This thesis describes advances in aspects of deposition process control, mechanical performance opti...
The increasing developed complexity parts geometry demanded by the industry nowadays, represents a c...
Additive Manufacturing (AM) has drawn abundant attention over the past decades in the manufacturing ...
Wire + Arc Additive Manufacture (WAAM) is receiving increasing attention as it offers a way to fabri...
Wire arc additive manufacturing (WAAM) has been considered as a promising technology for the product...
Wire-arc directed energy deposition (DED) is suitable for depositing large-scale metallic components...
Wire Arc Additive Manufacturing (WAAM) uses an arc welding process and consumable filler wire to dep...
In this thesis, investigations on depositions of similar, dissimilar and functionally graded materia...
Wire + arc additive manufacture (WAAM) is suitable for building large-scale components with high dep...