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  4. Hybrid approaches for reducing defects in laser-based direct energy deposition of nickel-based superalloys
 
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2023
Conference Paper
Title

Hybrid approaches for reducing defects in laser-based direct energy deposition of nickel-based superalloys

Abstract
Due to their outstanding high temperature properties, nickel-based superalloys are among the key materials in the energy and aerospace sector. With increasing importance of the additive manufacturing technology, direct energy deposition (DED) for industrial applications, such as the repair of turbine blades, DED of nickel-based superalloys has become a research field of high relevance.
However, the formation of defects in fabricated components (e.g. solidification cracking) is impeding the industrial transfer. Within this contribution the combination of DED with additional physical effects (hybrid DED) such as inductive heating or static and dynamic magnetic fields and their impact on crack mitigation is presented. The described approaches were examined based on studies on DED of crack-prone alloys such as Mar-M-247 and Ni-SA 247 LC. The results show the potential but also the limitations of hybrid DED depending on material and process specific challenges.
Author(s)
Müller, Michael  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Poetke, Stephanie  orcid-logo
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Heckert, M.
TU Dresden, Institut für Werkstoffwissenschaft
Riede, Mirko  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Lopez, Elena  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Brückner, Frank  
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Leyens, Christoph  orcid-logo
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Mainwork
Conference on Lasers in Manufacturing, LiM 2023  
Project(s)
Hybrid approaches for reducing defects in laser-based direct energy deposition of nickel-based superalloys  
Funder
Deutsche Forschungsgemeinschaft -DFG-, Bonn  
Conference
Conference on Lasers in Manufacturing 2023  
Link
Link
Language
English
Fraunhofer-Institut für Werkstoff- und Strahltechnik IWS  
Keyword(s)
  • additive manufacturing

  • direct energy deposition

  • nickel-based superalloys

  • hybrid manufacturing

  • crack mitigation

  • Laser Metal Deposition

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