Hydrogen Reduction of Synthetic Fe 2 O 3 Pellets: The Role of Calcium Oxide in Porosity Evolution and Reduction Kinetics

To determine how CaO affects pore evolution and hydrogen reduction kinetics, cylindrical pure Fe 2 O 3 pellets and 0.9 wt% CaO‐containing pellets were pressed, sintered, and reduced in H 2 at 800 °C. Thermogravimetric data were analyzed with a mixed‐control formulation of the unreacted‐core model, and cross‐sectional SEM image analysis estimated porosity and pore surface area. CaO addition decreased the time to 95% reduction by 25% on average and increased the reduction rate by a factor of 1.2–1.4 throughout reduction. From 33% to 95% reduction, mixed‐control analysis indicated that interfacial reaction resistance accounted for 68%–85% of modeled resistance. The CaO‐containing pellet had a 19% higher apparent interfacial reaction rate constant and a 43% higher effective diffusivity than the pure pellet. Relative to their sintered volumes, pure pellets contracted by 27%, whereas CaO‐containing pellets swelled by 8% after reduction. Compared with pure pellets, CaO‐containing pellets developed a coarser, more porous metallized layer that densified less beyond 50% reduction, despite generally lower pore surface area. CaO promoted intraparticle porosity and lowered the tendency to form a dense Fe layer. Kinetic and microstructural results indicate that both lower apparent interfacial reaction resistance and improved intrapellet gas transport contributed to faster reduction of the CaO‐containing pellets.

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Publication Details

Journal
steel research international
Published
2026-09-25
DOI
https://doi.org/10.1002/srin.70720
Primary Topic
Iron and Steelmaking Processes
Type
article
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article

Hydrogen Reduction of Synthetic Fe 2 O 3 Pellets: The Role of Calcium Oxide in Porosity Evolution and Reduction Kinetics

Leili Tafaghodi Khajavi, Ali Zakeri, Jess Kuper
steel research international
Iron and Steelmaking Processes
article

Hydrogen Reduction of Synthetic Fe 2 O 3 Pellets: The Role of Calcium Oxide in Porosity Evolution and Reduction Kinetics

Leili Tafaghodi Khajavi, Ali Zakeri, Jess Kuper
article en

Abstract

To determine how CaO affects pore evolution and hydrogen reduction kinetics, cylindrical pure Fe 2 O 3 pellets and 0.9 wt% CaO‐containing pellets were pressed, sintered, and reduced in H 2 at 800 °C. Thermogravimetric data were analyzed with a mixed‐control formulation of the unreacted‐core model, and cross‐sectional SEM image analysis estimated porosity and pore surface area. CaO addition decreased the time to 95% reduction by 25% on average and increased the reduction rate by a factor of 1.2–1.4 throughout reduction. From 33% to 95% reduction, mixed‐control analysis indicated that interfacial reaction resistance accounted for 68%–85% of modeled resistance. The CaO‐containing pellet had a 19% higher apparent interfacial reaction rate constant and a 43% higher effective diffusivity than the pure pellet. Relative to their sintered volumes, pure pellets contracted by 27%, whereas CaO‐containing pellets swelled by 8% after reduction. Compared with pure pellets, CaO‐containing pellets developed a coarser, more porous metallized layer that densified less beyond 50% reduction, despite generally lower pore surface area. CaO promoted intraparticle porosity and lowered the tendency to form a dense Fe layer. Kinetic and microstructural results indicate that both lower apparent interfacial reaction resistance and improved intrapellet gas transport contributed to faster reduction of the CaO‐containing pellets.

steel research international
McMaster University (CA)
Openalex Percentile: Top 21%
Iron and Steelmaking Processes
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