Studies on the abnormal effect of tensile strain on the MC→M23C6 in-situ transformation in Ni-based superalloy

Xiaoqing Song, Yongxin Wang, Junjie Gong, Yan Li, Zheng Chen

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10 Scopus citations

Abstract

Experiment and first-principles calculations were utilized to study the effect of tensile strain on the MC→M23C6 in-situ transformation in MC-M23C6 complex carbide as well as its micro-mechanism. The experiment indicates that strain inhibits the transformation. According to the calculations, Cr atoms will occupy M sublattice sites and diffusion through the VM-(VC)6 vacancy clusters in MC. Nevertheless, a single VM mechanism works during the diffusion of Cr atoms across the MC/M23C6 interface. Tensile strain as well as its direction can seriously influence the diffusion behavior of atoms by expanding or compressing the lattice. Generally, tensile strain will facilitate the diffusion of Cr atoms in MC and the flipping of diagonals. However, tensile strain decreases the lattice mismatch at the MC/M23C6 interface. Thus, the activation energy of the diffusion of Cr across the interface increases and the diffusion coefficient decreases. Strain inhibits the transformation mainly by restraining the diffusion of Cr atoms across the MC/M23C6 interface. The demonstrated concept enables a deeper understanding of superalloys and shed light on the rational design of higher property superalloys for various potential applications.

Original languageEnglish
Article number166307
JournalJournal of Alloys and Compounds
Volume923
DOIs
StatePublished - 25 Nov 2022

Keywords

  • Carbides transformation
  • First-principles calculation
  • Ni-based
  • Strain

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