Effect of boron and titanium on hot ductility of a low carbon niobium microalloyed steel

Abstract Hot tensile and compression tests were performed to evaluate the effect of B and Ti on the hot ductility of a low-C Nb-microalloyed steel. Specimens were solution-treated at 1350 °C and cooled at 0.83 °C/s to test temperatures between 750 and 1000 °C. The Nb-microalloyed steel exhibited a wide trough, extending from 950 to 750 °C. The addition of 0.0025 wt.% B improved hot ductility, increasing the reduction of area by more than 10% across the entire temperature range and shifting the trough to 925–800 °C. In the austenitic region, this improvement was attributed to increased grain boundary cohesion caused by B in solid solution and the formation of coarse, non-detrimental BN precipitates, while B also influenced the austenite-to-ferrite transformation kinetics. The simultaneous addition of Ti and B further enhanced hot ductility, narrowing the trough to 850–800 °C and raising the reduction of area above 60%. Detailed characterization using field emission gun scanning electron microscopy and transmission electron microscopy, combined with thermodynamic simulations, revealed that Ti combined with N to form TiN, which increased B in solid solution by reducing BN formation. Additionally, Ti modified Nb precipitation patterns, promoting fewer, coarser (Nb, Ti)(C, N) precipitates at 900 °C. However, at 800 °C, increasing Ti promoted a higher density of fine particles, which deteriorated hot ductility. These results are supported by kinetic simulations. Therefore, the optimum Ti additions correspond to hypo- or stoichiometric ratios with N, where B is protected in solid solution while precipitation effects are minimized.

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Publication Details

Journal
Journal of Iron and Steel Research International
Published
2026-09-29
DOI
https://doi.org/10.1007/s42243-026-01933-x
Primary Topic
Microstructure and Mechanical Properties of Steels
Type
article
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article

Effect of boron and titanium on hot ductility of a low carbon niobium microalloyed steel

Hans Magnusson, Yaiza Montaña, Jon Arruabarrena, Jacek Komenda et al.
Journal of Iron and Steel Research International
Microstructure and Mechanical Properties of Steels
article

Effect of boron and titanium on hot ductility of a low carbon niobium microalloyed steel

Hans Magnusson, Yaiza Montaña, Jon Arruabarrena, Jacek Komenda, Beatriz Pereda
article en

Abstract

Abstract Hot tensile and compression tests were performed to evaluate the effect of B and Ti on the hot ductility of a low-C Nb-microalloyed steel. Specimens were solution-treated at 1350 °C and cooled at 0.83 °C/s to test temperatures between 750 and 1000 °C. The Nb-microalloyed steel exhibited a wide trough, extending from 950 to 750 °C. The addition of 0.0025 wt.% B improved hot ductility, increasing the reduction of area by more than 10% across the entire temperature range and shifting the trough to 925–800 °C. In the austenitic region, this improvement was attributed to increased grain boundary cohesion caused by B in solid solution and the formation of coarse, non-detrimental BN precipitates, while B also influenced the austenite-to-ferrite transformation kinetics. The simultaneous addition of Ti and B further enhanced hot ductility, narrowing the trough to 850–800 °C and raising the reduction of area above 60%. Detailed characterization using field emission gun scanning electron microscopy and transmission electron microscopy, combined with thermodynamic simulations, revealed that Ti combined with N to form TiN, which increased B in solid solution by reducing BN formation. Additionally, Ti modified Nb precipitation patterns, promoting fewer, coarser (Nb, Ti)(C, N) precipitates at 900 °C. However, at 800 °C, increasing Ti promoted a higher density of fine particles, which deteriorated hot ductility. These results are supported by kinetic simulations. Therefore, the optimum Ti additions correspond to hypo- or stoichiometric ratios with N, where B is protected in solid solution while precipitation effects are minimized.

Journal of Iron and Steel Research InternationalVol. 33(11)
Centro de Estudios e Investigaciones Técnicas de Gipuzkoa (ES), AZTERLAN (ES), Tecnalia (ES), Kista Photonics Research Center (SE)
Openalex Percentile: Top 21%
Microstructure and Mechanical Properties of Steels
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