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Thermodynamic Entropy-Based Fatigue Life Assessment Method for Nickel-Based Superalloy GH4169 at Elevated Temperature Considering Cyclic Viscoplasticity

  • Shuiting Ding
  • , Shuyang Xia
  • , Zhenlei Li*
  • , Huimin Zhou
  • , Shaochen Bao
  • , Bolin Li
  • , Guo Li
  • *Corresponding author for this work
  • Beihang University
  • Tianmushan Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

This paper develops a thermodynamic entropy-based life prediction model to estimate the low-cycle fatigue (LCF) life of the nickel-based superalloy GH4169 at elevated temperature (650 °C). The gauge section of the specimen was chosen as the thermodynamic system for modeling entropy generation within the framework of the Chaboche viscoplasticity constitutive theory. Furthermore, an explicitly numerical integration algorithm was compiled to calculate the cyclic stress–strain responses and thermodynamic entropy generation for establishing the framework for fatigue life assessment. A thermodynamic entropy-based life prediction model is proposed with a damage parameter based on entropy generation considering the influence of loading ratio. Fatigue lives for GH4169 at 650 °C under various loading conditions were estimated utilizing the proposed model, and the results showed good consistency with the experimental results. Finally, compared to the existing classical models, such as Manson–Coffin, Ostergren, Walker strain, and SWT, the thermodynamic entropy-based life prediction model provided significantly better life prediction results.

Original languageEnglish
Article number391
JournalEntropy
Volume26
Issue number5
DOIs
StatePublished - May 2024

Keywords

  • cyclic viscoplasticity
  • life prediction
  • low-cycle fatigue (LCF)
  • nickel-based superalloy
  • thermodynamic entropy generation

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