4.6 Article

Modeling Dynamic Recrystallization Behavior in a Novel HIPed P/M Superalloy during High-Temperature Deformation

Journal

MATERIALS
Volume 15, Issue 11, Pages -

Publisher

MDPI
DOI: 10.3390/ma15114030

Keywords

P; M superalloy; microstructure evolution; grain growth; dynamic recrystallization

Funding

  1. National Natural Science Foundation of China [51975593]
  2. Science and Technology Talent Promotion Project of Hunan Province, China [2020TJ-Q05]
  3. innovation project for graduate students of Central South University [1053320192150]

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The features and evolution of microstructure of a new HIPed P/M superalloy are investigated through hot-compression tests. The study reveals the significant influence of deformation conditions on dynamic recrystallization (DRX) features and grain-growth behavior.
The dynamic recrystallization (DRX) features and the evolution of the microstructure of a new hot isostatic pressed (HIPed) powder metallurgy (P/M) superalloy are investigated by hot-compression tests. The sensitivity of grain dimension and DRX behavior to deformation parameters is analyzed. The results reveal that the DRX features and grain-growth behavior are significantly affected by deformation conditions. The DRX process is promoted with a raised temperature/true strain or a reduced strain rate. However, the grains grow up rapidly at relatively high temperatures. At strain rates of o.1 s(-1) and 1 s(-1), a uniform microstructure and small grains are obtained. Due to the obvious differences in the DRX rate at various temperatures, the piecewise DRX kinetics equations are proposed to predict the DRX behavior. At the same time, a mathematical model for predicting the grain dimension and the grain growth behavior is established. To further analyze the DRX behavior and the changes in grain dimension, the hot deformation process is simulated. The developed grain-growth equation as well as the piecewise DRX kinetics equations are integrated into DEFORM software. The simulated DRX features are consistent with the test results, indicating that the proposed DRX kinetics equations and the established grain-growth model can be well used for describing the microstructure evolution. So, they are very useful for the practical hot forming of P/M superalloy parts.

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