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April 17, 2026Chemical Engineering Science1 citationsOpen Access

Thermodynamic-kinetic modeling of hematite reduction in a laboratory-scale hydrogen plasma smelting reduction furnace

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AJAreej JavedIMI MäkeläHPHenri Pauna

Key Points

  • To develop and validate a kinetic model for the reduction of hematite using hydrogen plasma smelting.
  • Developed a dynamic kinetic model for hydrogen plasma smelting reduction (HPSR).
  • Modeling includes mass balances coupled with reduction kinetics under plasma conditions.
  • Validated with experimental data from laboratory-scale iron reduction experiments.
  • Model accurately predicts the reduction sequence: hematite → magnetite → wüstite → iron.
  • Model outcomes align well with X-ray diffraction (XRD) results for various phases and oxidation states.
  • Successful simulation of metal and slag mass transfer dynamics in plasma conditions.

Abstract

• A dynamic kinetic model for hydrogen plasma smelting reduction (HPSR) is proposed. • Model predicts hematite → magnetite → wüstite → iron reduction sequence for HPSR. • The thermodynamic-kinetic framework couples metal-slag mass transfer under plasma conditions. • The model is validated with data collected from the lab-scale experiments. Reducing CO 2 emissions in ironmaking is a critical challenge for sustainable steel production. Hydrogen plasma smelting reduction (HPSR) has emerged as a promising alternative technology, offering the potential to simultaneously smelt and reduce iron ores without carbon-based reductants. Due to the complex kinetics, plasma composition and high-temperature interactions between plasma species, molten metal, and slag, no mathematical descriptions for the course of the process have yet been proposed thus far. To fill this knowledge gap, a dynamic kinetic model was developed and validated for simulating the reduction of both pure and fluxed hematite in an arc melting furnace under a reducing Ar-H 2 atmosphere (90 vol% Ar–10 vol% H 2 , 1 atm, 5 L/min; 200 A, 10 mm arc length; 12.5 min reduction cycles). Plasma equilibrium composition is precalculated by Gibbs energy minimization and used as a boundary condition at the plasma–melt interface. Based on a modified effective equilibrium constant method, the model couples mass balances with reduction kinetics that are limited by mass transfer and driven by the thermodynamic equilibrium driving force. The model accounts for the oxidation and reduction reactions involving multiple oxidation states of iron under plasma conditions. Comparison with the experimental data (metal/slag masses and XRF) indicates that the model can accurately predict the evolution of the chemical composition of the metal and oxide phases. The predicted dynamics of the transformation pathway hematite → magnetite → wüstite → iron are in good accordance with the X-ray diffraction (XRD) results for the different phases and oxidation states.

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Cite This Study

Javed et al. (2026) studied this question.

synapsesocial.com/papers/69e1cf985cdc762e9d85876ehttps://doi.org/10.1016/j.ces.2026.124018
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