CO和Fe2O3在化学环燃烧体系中的反应路径

Xiaolei Zhang, C. Dong, Jun-jiao Zhang, D. Jiang, Yongping Yang
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引用次数: 1

摘要

本文基于密度泛函理论(DFT)在B3LYP水平上研究了CO和Fe2O3在化学环燃烧(CLC)中的反应机理。对该反应的所有反应物、中间体、过渡结构和产物的结构进行了优化和表征。用本征反应坐标法(IRC)对反应路径进行了验证。结果表明,该反应分为两个步骤,在步骤1中,吸附在Fe2O3表面的CO分子形成一个Fe-O键断裂的介质状态,在步骤2中,这里断裂的O原子在燃料反应堆中氧化了随后的CO分子。因此,在CLC过程中,Fe2O3分子将O从空气中输送到氧化CO。得到了两步反应的活化能和反应速率系数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The reaction path of CO and Fe2O3 in a chemical-looping combustion system
The reaction mechanism of CO and Fe2O3 in a chemical-looping combustion (CLC) was studied based on density functional theory (DFT) at B3LYP level in this paper. The structures of all reactants, intermediate, transition structures and products of this reaction had been optimized and characterized. The reaction path was validated by means of the intrinsic reaction coordinate (IRC) approach. The result showed that the reaction was divided into two steps, the adsorbed CO molecule on Fe2O3 surface formed a medium state with one broken Fe-O bond in step1, and in step2, O atom broken here oxidized a subsequent CO molecule in the fuel reactor. Thus, Fe2O3 molecule transport O from air to oxide CO continually in the CLC process. The activation energy and rate coefficients of the two steps were also obtained.
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