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Competitive reduction mechanisms and hydrogen utilization rate in the hydrogen-based reduction of carbon-containing iron ore composite pellets: Insights from gas evolution and microstructural characterization

  • Haopeng Kang
  • , Qiang Xu
  • , Zeshui Cao
  • , Desheng Li
  • , Bin Chen
  • , Xuyang Lu
  • , Jian Shi
  • , Liejin Guo
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Background Incorporating carbon-containing iron ore composite pellets mitigates locally low reduction rates from uneven H2 distribution in hydrogen-based shaft furnaces. Methods The synergistic reduction of composite pellets with different C/O ratios in a H2 atmosphere is studied through gas analysis, phase evolution, and microstructural characterization. Significant findings Composite pellet reduction accelerates markedly from the Fe3O4 → FeO stage versus carbon-free pellets. Catalyzed by iron oxides, CO generates via reverse water-gas shift below 500 °C. The steam-carbon reaction dominates carbon gasification above 745 °C. Higher temperatures enhance the H2 utilization rate, up to a maximum of 27% higher than carbon-free pellets, but reduce the proportion of reduction contributed by H2 while increasing that attributable to carbon. The apparent activation energy of the reduction reaction increases approximately linearly with the C/O ratio, ranging from 29.331 to 72.999 kJ/mol. C/O = 0.25 intensifies iron whisker sintering, whereas ratios ≥ 0.5 form hollow particle structures and substantially suppress sintering.

Original languageEnglish
Article number106671
JournalJournal of the Taiwan Institute of Chemical Engineers
Volume185
DOIs
StatePublished - Aug 2026

Keywords

  • Composite pellets
  • Gas analysis
  • H utilization rate
  • Synergistic reduction

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