Investigation on Mechanism of Microstructure Evolution during Multi-Process Hot Forming of GH4169 Superalloy Forging

Author:

Chen Ming-Song12ORCID,Cai Hong-Wei13,Lin Yong-Cheng23ORCID,Wang Guan-Qiang23,Li Hong-Bin4,Liu An13,Li Ze-Hao13ORCID,Peng Shan13

Affiliation:

1. Light Alloy Research Institute, Central South University, Changsha 410083, China

2. School of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China

3. State Key Laboratory of Precision Manufacturing for Extreme Service Performance, Changsha 410083, China

4. College of Metallurgies and Energy, North China Science and Technologies University, Tangshan 063009, China

Abstract

Typically, in the manufacturing of GH4169 superalloy forgings, the multi-process hot forming that consists of pre-deformation, heat treatment and final deformation is required. This study focuses on the microstructural evolution throughout hot working processes. Considering that δ phase can promote nucleation and limit the growth of grains, a process route was designed, including pre-deformation, aging treatment (AT) to precipitate sufficient δ phases, high temperature holding (HTH) to uniformly heat the forging, and final deformation. The results show that the uneven strain distribution after pre-deformation has a significant impact on the subsequent refinement of the grain microstructure due to the complex coupling relationship between the evolution of the δ phase and recrystallization behavior. After the final deformation, the fine-grain microstructure with short rod-like δ phases as boundaries is easy to form in the region with a large strain of the pre-forging. However, necklace-like mixed grain microstructure is formed in the region with a small strain of the pre-forging. In addition, when the microstructure before final deformation consists of mixed grains, dynamic recrystallization (DRX) nucleation behavior preferentially depends on kernel average misorientation (KAM) values. A large KAM can promote the formation of DRX nuclei. When the KAM values are close, a smaller average grain size of mixed-grain microstructure is more conductive to promote the DRX nucleation. Finally, the interaction mechanisms between δ phase and DRX nucleation are revealed.

Publisher

MDPI AG

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