Hot-Deformation Mechanical Properties and Dynamic Recrystallization Behavior of 12Cr2Mo1V Steel
This study investigates the hot-deformation behavior and dynamic recrystallization (DRX) kinetics of 12Cr2Mo1V steel for heavy forgings of large hydrogenation reactors. Gleeble isothermal compression tests were performed at 950–1200 °C and strain rates of 0.01–5 s−1 with friction correction to obtain reliable flow–stress data. A strain-compensated Arrhenius constitutive model was established to characterize the hot flow behavior over the entire strain range, with R = 0.9918 and AARE = 3.8826%. The dynamic material model was used to determine the optimal stable processing window of 1000–1200 °C and 0.01–0.1 s−1. Microstructural analyses reveal that continuous dynamic recrystallization (CDRX) dominates grain evolution below 1100 °C, while discontinuous dynamic recrystallization (DDRX) prevails at higher temperatures. A mechanism-segmented DRX model with a 1100 °C transition threshold is proposed to precisely describe the temperature-dependent dual-DRX kinetics of the studied steel. The calibrated constitutive equation and segmented DRX sub-models were embedded into the DEFORM finite-element software for coupled thermo-mechanical–microstructural simulations, and the simulated microstructures agree well with experimental results. This work supports refined numerical simulation and process-parameter optimization of heavy reactor forgings, while providing a convenient and efficient modeling strategy for alloys with temperature-dependent dual-DRX mechanisms.
Authors
- Jiyao Liu (ORCID: https://orcid.org/0000-0002-3316-5704)
- Ruxing Shi
- Litao Yin
- Chong Chen
- Yaqiong Chang
- Guohui Yin
- Ming Chen
- Xianju Li
- Ming Yang
Institutions
- Henan University of Science and Technology (CN)
- CITIC Group (China) (CN)
- Luoyang Institute of Science and Technology (CN)
Publication Details
- Journal
- Metals
- Published
- 2026-09-16
- DOI
- https://doi.org/10.3390/met16091032
- Primary Topic
- Metallurgy and Material Forming
- Type
- article
- Field-Weighted Citation Impact
- 0.00