摘要
To support deep decarbonization of the steel sector, hydrogen–carbon synergistic reduction has emerged as a key enabling technology. However, the nonlinear couplings linking process variables to reduction performance remain insufficiently understood. This study develops a physics-grounded optimization framework that integrates transient multiphysics modeling, response surface methodology, NSGA-II-based Pareto optimization, and TOPSIS–LINMAP decision-making for single hematite pellets reduced in H2–CO atmospheres. The multiphysics model incorporates multi-step reduction kinetics, coupled molecular–Knudsen diffusion, non-isothermal heat transfer, and reduction-driven pore-structure evolution. The response surfaces show that pellet radius and reducing-gas temperature dominate the reduction time, pellet radius and the H2-to-CO molar ratio govern the signed cumulative net reaction heat, and the H2-to-CO molar ratio and inlet velocity strongly affect reducing-gas utilization efficiency. A high-efficiency operating window is identified at 1250–1270 K and a moderate H2-to-CO molar ratio of 2.5–3.7, where rapid reaction kinetics and CO-assisted heat compensation are well balanced. Increasing inlet velocity enhances mass transfer but shortens gas residence time, revealing a trade-off between transport intensification and reaction sufficiency. Relative to the center-point baseline, the multiphysics-verified TOPSIS and LINMAP schemes substantially improve overall reduction performance: they shorten the time required to reach 95% reduction by approximately 37.7% and 39.3%, reduce the net heat absorption demand by approximately 65.2% and 68.7%, and improve reducing-gas utilization efficiency by approximately 65.5% and 61.0%, respectively. The proposed framework provides an interpretable, mechanism-resolved, and decision-oriented route toward cleaner and more efficient H2–CO direct reduction.
| 源语言 | 英语 |
|---|---|
| 期刊论文编号 | 148928 |
| 期刊 | Journal of Cleaner Production |
| 卷 | 573 |
| DOI | |
| 出版状态 | 已出版 - 2 8月 2026 |
联合国可持续发展目标
此成果有助于实现下列可持续发展目标:
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学术指纹
探究 'Multiphysics-informed multi-objective optimization of hydrogen–carbon synergistic reduction of hematite pellets: Mechanistic insights and process decision strategies' 的科研主题。它们共同构成独一无二的学术指纹。引用此
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