Effect of Microalloying strategy on the evolution of austenite grain structures during soaking of Microalloyed HSLA steels

Uniform prior-austenite grain (PAG) structure is essential to achieve a fine and uniform ferrite grain size after processing. However, some microalloyed steels develop bimodal γ grain size distribution during soaking. This study compares the grain growth during reheating in as-cast steels with different combinations of Nb, Ti, V, and Al. Nb-bearing steels exhibit bimodality at 1150–1200°C due to inhomogeneous Nb(C,N) precipitation and differential pinning. Conversely, TiN remains stable and suppresses coarsening, V has minimal influence, and AlN provides uniform grain control up to ∼1150°C. Two established grain-growth formulations and an empirical correlation were evaluated to predict average austenite grain size. The correlation showed the best agreement, while a Bimodality Susceptibility Index (BSI) identified alloy–temperature combinations susceptible to bimodal grain growth.

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Journal
Materials Science and Technology
Published
2026-08-25
DOI
https://doi.org/10.1177/02670836261478532
Primary Topic
Microstructure and Mechanical Properties of Steels
Type
article
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article

Effect of Microalloying strategy on the evolution of austenite grain structures during soaking of Microalloyed HSLA steels

Sankalp Biswal, Debalay Chakrabarti, Kumar Aniket Anand, D. N. Crowther et al.
Materials Science and Technology
Microstructure and Mechanical Properties of Steels
article

Effect of Microalloying strategy on the evolution of austenite grain structures during soaking of Microalloyed HSLA steels

Sankalp Biswal, Debalay Chakrabarti, Kumar Aniket Anand, D. N. Crowther, Vinod Kumar
article en

Abstract

Uniform prior-austenite grain (PAG) structure is essential to achieve a fine and uniform ferrite grain size after processing. However, some microalloyed steels develop bimodal γ grain size distribution during soaking. This study compares the grain growth during reheating in as-cast steels with different combinations of Nb, Ti, V, and Al. Nb-bearing steels exhibit bimodality at 1150–1200°C due to inhomogeneous Nb(C,N) precipitation and differential pinning. Conversely, TiN remains stable and suppresses coarsening, V has minimal influence, and AlN provides uniform grain control up to ∼1150°C. Two established grain-growth formulations and an empirical correlation were evaluated to predict average austenite grain size. The correlation showed the best agreement, while a Bimodality Susceptibility Index (BSI) identified alloy–temperature combinations susceptible to bimodal grain growth.

Materials Science and Technology
Indian Institute of Technology Kharagpur (IN), The White House (US), Tata Steel (India) (IN)
Openalex Percentile: Top 18%
Microstructure and Mechanical Properties of Steels
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