Microstructural evolution, boride layer growth kinetics, and activation energy of dual-activator borided AISI 1040 steel

This study investigates the microstructural evolution, boride layer growth kinetics, and activation energy for boron diffusion in AISI 1040 steel borided using a dual-activator medium. Boriding was performed at 1173, 1223, and 1273 K for 2, 4, and 6 h. The phase composition of the boride layers was characterized by X-ray diffraction, while microstructural features were examined using scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy. Under all conditions, a characteristic saw-tooth boride layer consisting of FeB and Fe 2 B phases was formed. The minimum layer thickness was 95 ± 8 μm after 2 h at 1173 K, while the maximum reached 265 ± 9 μm after 6 h at 1273 K. The activation energy for boron diffusion, determined using the parabolic growth model, was 133.62 kJ mol −1 . The results demonstrate that dual-activator boriding produces thicker, more homogeneous boride layers and offers an energy-efficient surface modification technique.

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Publication Details

Journal
Ironmaking & Steelmaking Processes Products and Applications
Published
2026-10-08
DOI
https://doi.org/10.1177/03019233261494037
Primary Topic
Surface Treatment and Coatings
Type
article
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article

Microstructural evolution, boride layer growth kinetics, and activation energy of dual-activator borided AISI 1040 steel

Bünyamin Yamanel
Ironmaking & Steelmaking Processes Products and Applications
Surface Treatment and Coatings
article

Microstructural evolution, boride layer growth kinetics, and activation energy of dual-activator borided AISI 1040 steel

Bünyamin Yamanel
article en

Abstract

This study investigates the microstructural evolution, boride layer growth kinetics, and activation energy for boron diffusion in AISI 1040 steel borided using a dual-activator medium. Boriding was performed at 1173, 1223, and 1273 K for 2, 4, and 6 h. The phase composition of the boride layers was characterized by X-ray diffraction, while microstructural features were examined using scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy. Under all conditions, a characteristic saw-tooth boride layer consisting of FeB and Fe 2 B phases was formed. The minimum layer thickness was 95 ± 8 μm after 2 h at 1173 K, while the maximum reached 265 ± 9 μm after 6 h at 1273 K. The activation energy for boron diffusion, determined using the parabolic growth model, was 133.62 kJ mol −1 . The results demonstrate that dual-activator boriding produces thicker, more homogeneous boride layers and offers an energy-efficient surface modification technique.

Ironmaking & Steelmaking Processes Products and Applications
Kırıkkale University (TR)
Openalex Percentile: Top 22%
Surface Treatment and Coatings
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