Multiscale analysis of interior cracking behavior of Ni-based superalloy fabricated by selective laser melting under very-high-cycle-fatigue at high-temperature

Tianyi Hu, Wei Li*, Shihua Yuan, Yucheng Zhang, Xiaolong Li, Liang Cai, Zhenglin Mo, Cheng Li

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

3 Citations (Scopus)

Abstract

The fatigue test at high-temperature of selective laser melting Ni-based superalloy was performed to reveal the mechanism of interior cracking behavior by multiple analysis methods in the very-high-cycle-fatigue regime. Due to the inhibition effect of oxide layer, the interior multi-defects assisted facetted cracking becomes a significant failure mode. Large grain deformation mainly occurs on the fracture surface, and slip systems with high Schmid factor are activated by high-temperature. The precipitates in the matrix hinder the dislocation movement, resulting in dislocation accumulation and stress concentration increase, which makes it easier for microcracks initiation. The initiated microcracks with crack deflection caused by high angle grain boundaries propagate transgranularly to form a nearly circular region and undergo fast unstable growth, eventually leading to fracture.

Original languageEnglish
Article number104356
JournalMaterials Today Communications
Volume33
DOIs
Publication statusPublished - Dec 2022

Keywords

  • Additive manufacturing
  • Fatigue
  • High-temperature
  • Interior cracking behavior
  • Metals and alloys

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