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Microstructural and Tensile Properties Evolutions of Direct-Aged Waspaloy Produced by Wire Arc Additive Manufacturing

  • Marjolaine Sazerat
  • , Azdine Nait-Ali
  • , Lucie Barot
  • , Alice Cervellon
  • , Inmaculada Lopez-Galilea
  • , Dominique Eyidi
  • , Anne Joulain
  • , Patrick Villechaise
  • , Jonathan Cormier
  • , Sebastian Weber
  • , Roland Fortunier
  • Centre national de la recherche scientifique
  • Computational Solid Mechanics
  • Ruhr-University Bochum
  • Univ. Poitiers
  • Laboratoire de Tribologie et Dynamique des Systèmes

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

4 Citations (Scopus)

Abstract

The microstructure and tensile properties of direct-aged Waspaloy manufactured using wire arc-based Cold Metal Transfer (CMT) have been investigated. Samples were exposed to temperatures ranging from 700 to 900 °C, for up to 96 h. In the as-deposited condition, pronounced chemical segregation is inherited from the process, leading to heterogeneous γ′ precipitation between dendrite cores and interdendritic spacings. γ′ size and distribution were measured in both areas for each heat treatment, and a diffusion-controlled coarsening behavior following the Lifshitz–Slyozov–Wagner theory was observed for temperatures above 760 °C. Activation energies were calculated. Tensile tests at room temperature were carried out not only on the additively processed alloy before and after aging but also on wrought sub-solvus and super-solvus treated material for reference. Results showed that heat treatment significantly increased the yield strength and ultimate tensile strength of the CMT samples, of up to +340 MPa compared to the as-built conditions. Elongation, however, decreased from 40–45% to 16–28%. Direct-aged CMT Waspaloy exhibited similar behavior to that of wrought super-solvus Waspaloy, due to their large grains (~200–250 µm). Anisotropy in tensile properties was estimated by calculating the ratio of properties for horizontal and vertical specimens. Finally, the formation of intermetallic phases was assessed. Thermodynamic calculations predicted the formation of M23C6, η, and σ phases in interdendritic spacings at thermodynamic equilibrium in the range 700–900 °C. Using electron diffraction patterns and energy-dispersive X-ray spectrometry, intergranular (Cr, Mo)23C6 secondary carbides decorating grain boundaries and located near (Ti, Mo)C primary carbides in the interdendritic spacings were observed to nucleate and grow.

Original languageEnglish
Title of host publicationProceedings of the 10th International Symposium on Superalloy 718 and Derivatives, 2023
EditorsEric A. Ott, Joel Andersson, Chantal Sudbrack, Zhongnan Bi, Kevin Bockenstedt, Ian Dempster, Michael Fahrmann, Paul Jablonski, Michael Kirka, Xingbo Liu, Daisuke Nagahama, Tim Smith, Martin Stockinger, Andrew Wessman
PublisherSpringer Science and Business Media Deutschland GmbH
Pages717-737
Number of pages21
ISBN (Print)9783031274466
DOIs
Publication statusPublished - 1 Jan 2023
Event10th International Symposium on Superalloy 718 and Derivatives, 2023 - San Diego, United States
Duration: 19 Mar 202323 Mar 2023

Publication series

NameMinerals, Metals and Materials Series
ISSN (Print)2367-1181
ISSN (Electronic)2367-1696

Conference

Conference10th International Symposium on Superalloy 718 and Derivatives, 2023
Country/TerritoryUnited States
CitySan Diego
Period19/03/2323/03/23

Keywords

  • Aging
  • Microstructure
  • Secondary phase
  • Tensile properties
  • WAAM-CMT
  • Waspaloy

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