Analysis of Hot Ductility and Grain Growth Behavior in High‐Manganese Cryogenic Steel

Transverse cracking during continuous casting and subsequent hot working remains a major obstacle to the industrial application of high‐Mn steels. This study demonstrates that the hot workability of an industrial 0.45C–24Mn–3Cr steel is governed by the combined effects of reheating temperature, deformation temperature, dynamic recrystallization (DRX), and grain‐boundary stability. The experimental results demonstrate that lowering the reheating temperature effectively improves hot workability, mitigates damage to the austenite grains, and suppresses abnormal grain growth. Specimens reheated at 1130 °C exhibited higher and more stable hot ductility than those reheated at 1300 °C. A Region II ductility trough occurred at 700–900 °C because of incomplete DRX, strain localization, and limited grain‐boundary accommodation, whereas pronounced DRX, grain refinement, and annealing‐twin formation restored ductility at 900–1100 °C, with the maximum reduction of area obtained near 1000 °C. Reheating at 1300 °C accelerated grain‐boundary migration and DRX but simultaneously weakened austenite grain boundaries, promoted localized melting and void formation at high deformation temperatures, and eventually triggered abnormal austenite grain growth. Thermodynamic analysis further showed that Cr stabilizes austenite but also increases the tendency for Cr‐rich M 23 C 6 precipitation in the intermediate‐temperature range. Reheating near 1130 °C is therefore recommended to reduce abnormal grain growth and surface‐cracking susceptibility.

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Publication Details

Journal
steel research international
Published
2026-09-21
DOI
https://doi.org/10.1002/srin.70694
Primary Topic
Microstructure and Mechanical Properties of Steels
Type
article
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article

Analysis of Hot Ductility and Grain Growth Behavior in High‐Manganese Cryogenic Steel

Hongyan Wu, Jian Wang, Gao Xiu-hua, Chao Sun et al.
steel research international
Microstructure and Mechanical Properties of Steels
article

Analysis of Hot Ductility and Grain Growth Behavior in High‐Manganese Cryogenic Steel

Hongyan Wu, Jian Wang, Gao Xiu-hua, Chao Sun, Lin-Heng Chen, Tao Liu, Ze‐Kai Jin, Lin‐Xiu Du
article en

Abstract

Transverse cracking during continuous casting and subsequent hot working remains a major obstacle to the industrial application of high‐Mn steels. This study demonstrates that the hot workability of an industrial 0.45C–24Mn–3Cr steel is governed by the combined effects of reheating temperature, deformation temperature, dynamic recrystallization (DRX), and grain‐boundary stability. The experimental results demonstrate that lowering the reheating temperature effectively improves hot workability, mitigates damage to the austenite grains, and suppresses abnormal grain growth. Specimens reheated at 1130 °C exhibited higher and more stable hot ductility than those reheated at 1300 °C. A Region II ductility trough occurred at 700–900 °C because of incomplete DRX, strain localization, and limited grain‐boundary accommodation, whereas pronounced DRX, grain refinement, and annealing‐twin formation restored ductility at 900–1100 °C, with the maximum reduction of area obtained near 1000 °C. Reheating at 1300 °C accelerated grain‐boundary migration and DRX but simultaneously weakened austenite grain boundaries, promoted localized melting and void formation at high deformation temperatures, and eventually triggered abnormal austenite grain growth. Thermodynamic analysis further showed that Cr stabilizes austenite but also increases the tendency for Cr‐rich M 23 C 6 precipitation in the intermediate‐temperature range. Reheating near 1130 °C is therefore recommended to reduce abnormal grain growth and surface‐cracking susceptibility.

steel research international
Northeastern University (CN)
Openalex Percentile: Top 20%
Microstructure and Mechanical Properties of Steels
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Analysis of Hot Ductility and Grain Growth Behavior in High‐Manganese Cryogenic Steel — Hongyan Wu, Jian Wang, et al. · steel research international (2026) | TGRS Research Map | TGRS