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超临界环境中燃烧反应的分子动力学研究。第2部分:CO + OH → CO₂ + H反应动力学的盒式分子动力学研究

Molecular Dynamics Study of Combustion Reactions in a Supercritical Environment. Part 2: Boxed MD Study of CO + OH → CO + H Reaction Kinetics.

作者信息

Panteleev Sergey V, Masunov Artëm E, Vasu Subith S

机构信息

NanoScienece Technology Center, University of Central Florida , 12424 Research Parkway, Suite 400, Orlando, Florida 32826, United States.

N. I. Lobachevsky State University of Nizhny Novgorod , Gagarin Av. 23, Nizhny Novgorod 603950, Russia.

出版信息

J Phys Chem A. 2018 Feb 1;122(4):897-908. doi: 10.1021/acs.jpca.7b09774. Epub 2018 Jan 23.

Abstract

Oxy-fuel combustion technology holds a great promise in both increasing the efficiency of the energy conversion and reducing environmental impact. However, effects of the higher pressures and replacement of the nitrogen with carbon dioxide diluent are not well understood at present. The title reaction is one of the most important processes in combustion. Despite numerous studies, the effects of supercritical carbon dioxide environment did not receive much attention in the past. Here we report the results of boxed molecular dynamics simulations of these effects at QM/MM theory level with periodical boundary conditions. The free energy barriers for HOCO intermediate formation and decomposition were tabulated in a wide range of pressures (1-1000 atm) and temperatures (400-1600 K). Pressure dependence of calculated rate constants for these reaction steps and overall reaction were analyzed. We found that the CO environment may increase these rate constants up to a factor of 25, at near critical conditions. At higher temperatures, this effect weakens significantly. Numerical values for parameters of extended Arrhenius equation, suitable for combustion kinetic modeling are reported.

摘要

富氧燃烧技术在提高能量转换效率和减少环境影响方面都有着巨大的前景。然而,目前对于更高压力以及用二氧化碳稀释剂替代氮气的影响还了解得不够充分。标题反应是燃烧过程中最重要的过程之一。尽管有大量研究,但超临界二氧化碳环境的影响在过去并未受到太多关注。在此,我们报告了在周期性边界条件下,基于量子力学/分子力学(QM/MM)理论水平对这些影响进行的盒式分子动力学模拟结果。列出了在广泛的压力范围(1 - 1000 大气压)和温度范围(400 - 1600 K)下,HOCO 中间体形成和分解的自由能垒。分析了这些反应步骤以及总反应的计算速率常数对压力的依赖性。我们发现,在接近临界条件下,CO 环境可能会使这些速率常数增大至 25 倍。在更高温度下,这种效应会显著减弱。报告了适用于燃烧动力学建模的扩展阿伦尼乌斯方程参数的数值。

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