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Temperature Dependence of Tensile Deformation Mechanism of GH4975 Superalloy for Turbine Disk
Author:
Affiliation:

1Shi Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China;2School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China;3Shenyang Liming Aero-Engine Group Co. Ltd, Shenyang 110043, China

Clc Number:

TG132.3+3

Fund Project:

Major Science and Technology Projects of Liaoning Province (No. 2024JH1/11700037), National Science and Technology Major Special Project (No. J2019-VI-0006-0120), Chinese Academy of Sciences Pilot C Special Project (No. XDC0140000), China Academy of Sciences Youth Innovation Promotion Association Member Support Project (No. 2023202), Liaoning Province Natural Science Foundation General Project (No. 2023-MS-024), New Materials Special Project (No. 2024 ZD0600600), the Innovation Program of Institute of Metal Research, Chinese Academy of Sciences (No. 2023-PY08).

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    Abstract:

    Tensile properties, deformation mechanism, and fracture behavior of the GH4975 superalloy were investigated using optical microscope, scanning electron microscope, electron backscatter diffractometer, transmission electron microscope, and other advanced characterization techniques. The results show that the deformation mechanism of the alloy transitions from strong coupling dislocation shear at low temperatures to stacking fault and microtwin formation at intermediate temperatures. At temperatures higher than 850 °C, the dislocation bypass mechanism is activated and gradually dominates the dislocation movement with the increase in temperature. Carbide cracking dominates the failure of the alloy at low temperatures. As the temperature increases, the grain boundary strength decreases. Therefore, grain boundary cracks become the primary crack sources. At temperatures above 800 °C, the reduction in grain boundary strength and the activation of the dislocation bypass mechanism are the primary reasons for the rapid decline in alloy strength.

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[Tai Wenbin, Zhang Rui, Wu Jingjing, Zhou Zijian, Cui Chuanyong, Zhou Yizhou, Sun Xiaofeng. Temperature Dependence of Tensile Deformation Mechanism of GH4975 Superalloy for Turbine Disk[J]. Rare Metal Materials and Engineering,2026,55(6):1557~1566.]
DOI:10.12442/j. issn.1002-185X.20250040

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History
  • Received:January 19,2025
  • Revised:April 08,2025
  • Adopted:April 21,2025
  • Online: April 20,2026
  • Published: April 17,2026