吸附
密度泛函理论
化学
工作(物理)
活化能
反应机理
催化作用
Atom(片上系统)
动力学
热力学
反应速率
联轴节(管道)
氧化还原
物理化学
化学动力学
反应速率常数
氧气
材料科学
反应性(心理学)
过渡状态
氮氧化物
还原(数学)
化学物理
化学反应
氢
作者
Xicai Liu,Jue Tang,Mansheng Chu,Zichuan Zhao,Jinge Feng,Jie Liu
标识
DOI:10.1016/j.ijhydene.2025.152936
摘要
The hydrogen-based shaft furnace (HSF) represents a promising route toward cleaner production in iron and steel industry. In this work, the reaction mechanism of H 2 and CO with FeO was systematically explored using density functional theory (DFT). The adsorption energies of H 2 and CO on the pure FeO(100) surface are −0.82 eV and −0.88 eV, respectively, and indicating a competitive adsorption relationship. H 2 adsorption weakens while CO adsorption is enhanced on reduced surfaces, and leading to a synergistic effect. The energy barriers for the surface reactions of H 2 and CO are found to be 2.33 eV and 2.57 eV, respectively, with H 2 exhibiting the lower barrier. Meanwhile, the energy barriers associated with the migration of O atom increase progressively to 1.43, 1.65, and 2.94 eV as the reduction advances. Temperature elevation is also shown to accelerate both the reaction kinetics of H 2 /CO and the migration rates of O atom. In the initial stage, the reduction rate is governed by surface reactions, whereas in later stage, it becomes limited by O migration for H 2 , and by both processes for CO. Although higher temperatures negatively affect adsorption, those thermodynamically favor reduction reactions and mitigate the disadvantage associated with H 2 reaction. Enhancing the H 2 ratio and increasing temperature are critical for improving HSF reduction efficiency. Moreover, maintaining a small amount of CO can promote H 2 adsorption in later stage. This work provides theoretical guidance for achieving high-efficiency and low-emission ironmaking using HSF technology.
科研通智能强力驱动
Strongly Powered by AbleSci AI