Synergetic regulation of hierarchical microstructure to improve the 704 ℃ tensile property in laser directed energy deposition IN718Plus superalloy

Chengyu Wang, Maosen Fu, Yiheng Wang, Xiao Ma, Xin Lin

Research output: Contribution to journalArticlepeer-review

8 Scopus citations

Abstract

IN718Plus superalloy with hierarchical microstructure has been successfully manufactured by laser directed energy deposition (LDED). Along building direction, microstructure varies from composing of epitaxial columnar grains oriented along <001>γ direction to equiaxed grains in flower like configuration. Striped Laves phase and fine γ'/γ'' precipitates form in the columnar grains, and would transform into fine Laves phase particles and nanoscale γ' precipitates at equiaxed layer. To improve the compositional homogeneity and microstructural stability, high temperature solution treatment has been explored on the superalloy. The treatment would not affect the morphology and orientation of columnar grains, but would redissolve Laves phase precipitates. Double aging treatment has also been performed to obtain homogeneous distributed γ' precipitates, and the synergistic regulation of microstructure enhances the mechanical property significantly, as causing the room temperature yield strength and tensile strength increased from 0.88 GPa and 1.14 – 1.04 GPa and 1.28 GPa, respectively. Moreover, the excellent mechanical property would be maintained upon 704 ℃, with yield strength of 0.93 GPa, tensile strength of 1.04 GPa and high elongation of 27.3%.

Original languageEnglish
Article number171071
JournalJournal of Alloys and Compounds
Volume962
DOIs
StatePublished - 5 Nov 2023

Keywords

  • Electron microscopy
  • Hierarchical microstructure
  • IN718Plus superalloy
  • Laser directed energy deposition
  • Mechanical properties

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