The Path from Arc Welding to Additive Manufacturing of Multi-material Parts Using Directed Energy DepositionDer Weg vom Lichtbogenschweißen zur additiven Fertigung von Multimaterialbauteilen durch Materialauftrag mit gerichteter Energieeinbringung

被引:0
作者
Tom-Eric Adams
Peter Mayr
机构
[1] Technische Universität München,TUM School of Engineering and Design, Department of Materials Engineering, Lehrstuhl für Werkstofftechnik der Additiven Fertigung
关键词
Directed energy deposition; Wire Arc Additive Manufacturing; 3D Plasma Metal Deposition; Multi-Material-Structures; Additive manufacturing; Fusion welding; Materialauftrag mit gerichteter Energieeinbringung; Wire Arc Additive Manufacturing; 3D-Plasma Metal Deposition; Multimaterialbauteile; Additive Fertigung; Schmelzschweißen; Introduction;
D O I
10.1007/s00501-022-01241-3
中图分类号
学科分类号
摘要
Within this contribution, the transfer of knowledge from conventional fusion and deposition welding using electric arc processes to advanced directed energy deposition (DED) of multi-material structures in additive manufacturing are presented. Gas metal arc and plasma welding have been used for decades to produce either joints or metallic deposits with desired properties. Also creating certain shapes by depositing weld metal in a layer-wise manner has been known for approximately 100 years. With the rise of additive manufacturing, conventional arc welding processes have been extensively used to “print” 3‑dimensional parts. The possibility of additively manufacturing multi-material parts or transition parts is of particular interest as this has the potential to create load-efficient structures or even create new alloys within the AM process. Within this contribution, Wire Arc Additive Manufacturing (WAAM) and 3D Plasma Metal Deposition (3DPMD) for the manufacturing of multi-material and transition parts are discussed. The experience with various alloys from carbon steels, high-alloyed steels, and titanium- and nickel-based alloys are presented.
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页码:318 / 324
页数:6
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