Deformation and failure mechanisms of single crystal superalloy under temperature gradient

Z. Z. Gao, X. Z. Zhi, N. X. Hou, Z. F. Yue

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

The crystallographic constitutive model under temperature gradient is developed and introduced to study the deformation and failure mechanisms of single crystal superalloy. Tensile tests of thin-walled pipe specimen at different temperatures without cooled air flow were carried out. Based on the experimental results, the temperature dependence of constitutive model was studied and the basic parameters of constitutive model were obtained. To investigate the deformation and failure mechanisms, the thin-walled pipe specimen with cooled air flow under temperature gradient were tested. Considered the fluid-solid interface (FSI), a finite element method (FEM) was proposed to simulate the process of tension. In FEM, the activation rate of slip system was defined as the failure law of specimen under temperature gradient. The simulation result was in good agreement with the experiment result. Furthermore, the fracture surface of the specimen was observed by the scanning electron microscopy (SEM). The microstructure revealed that the slip deformation belonged to {1. 1. 1} crystalplane is a principal failure mechanism of single crystal superalloy under temperature gradient. The results of the SEM also implied that the proposed FEM method can be used to systemically study the deformation and failure behavior of single crystal superalloy cooled blade.

Original languageEnglish
Pages (from-to)180-187
Number of pages8
JournalTheoretical and Applied Fracture Mechanics
Volume56
Issue number3
DOIs
StatePublished - Dec 2011

Keywords

  • Deformation
  • Failure
  • Single crystal superalloy
  • Temperature gradient

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