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Published on: June 7, 2018
Study on Dynamic Recrystallization Behavior and Numerical Simulation Prediction of Martensite Stainless Steel
Tonghui Sun1,2,3, Huiqin Chen1, Ruxing Shi2,3
1School of Materials Science and Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China.
Abstract:
To address the coarse and mixed grain phenomena in ultra-large martensitic stainless steel forgings, this study investigated the hot deformation behavior of 04Cr13Ni5Mo martensitic stainless steel under deformation conditions of 950-1200 °C and strain rates of 0.001-0.1 s-1 using Gleeble-1500D thermomechanical simulation tests. Based on the experimental data, the flow stress curves of the steel were obtained, and a dynamic recrystallization (DRX) kinetic model was established. The model was then integrated into finite element software for simulation to verify its reliability, providing theoretical guidance for optimizing high-temperature forging processes. The results demonstrate that dynamic recrystallization in 04Cr13Ni5Mo steel occurs more readily at temperatures above 1050 °C and strain rates below 0.1 s-1. Under the selected hot compression test condition (1100 °C/0.01 s-1), the simulated grain size in the central deformation zone was 48.98 μm, closely matching the experimentally measured value of 48.18 μm. This agreement confirms the reliability of finite element-based prediction and control of grain size in martensitic stainless steel forgings.
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