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Modeling hydrogen inhibition in gasification surface reactions

机译:在气化表面反应中模拟氢抑制

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The gasification of carbonaceous char into synthesis gas species presents a viable thermochemical conversion pathway of both fossil fuel-based and biomass-based solid fuels. Observations of these synthesis gas species-particularly hydrogen-inhibiting gasification rates have been documented for decades. Finite-rate surface kinetic reaction mechanisms that can be applied to a variety of reactor models and conditions are needed, particularly those which describe gasification inhibition. To quantify the effects of hydrogen inhibition reactions in gasification conditions, existing surface kinetic mechanisms were employed in simulations and compared with experimental data available in the literature. A computationally inexpensive method to model the surface chemistry in simple gasification reactors is utilized in this study-where appropriate, these experiments in the literature were simulated as perfectly stirred reactors. When used in comparison with kinetically controlled experiments, this method can readily facilitate the identification of missing reaction steps in surface mechanisms. Results reveal the inability of current surface mechanisms in predicting experimentally observed inhibition trends. Modeling the inhibition with an adsorption-desorption pair of reactions based on a combination of theoretical and empirical considerations was found to improve the overall model when these reactions were appended to a current surface mechanism. Reasonable agreement with experimental data is found with regard to the kinetics of carbon gasification reactions in the inhibiting presence of hydrogen. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:将碳质焦炭气化为合成气物质提供了基于化石燃料和基于生物质的固体燃料的可行的热化学转化途径。这些合成气物种,特别是氢气抑制气化速率的观察已有数十年的记录。需要可应用于多种反应器模型和条件的有限速率表面动力学反应机理,特别是描述气化抑制作用的那些。为了量化氢抑制反应在气化条件下的影响,在模拟中采用了现有的表面动力学机制,并将其与文献中的实验数据进行了比较。在这项研究中,采用了一种计算便宜的方法来对简单气化反应器中的表面化学进行建模,在适当的情况下,文献中的这些实验被模拟为完全搅拌反应器。当与动力学控制实验进行比较时,该方法可以轻松地帮助确定表面机理中缺少的反应步骤。结果表明,当前的表面机制无法预测实验观察到的抑制趋势。当将吸附和解吸对基于理论和经验的综合考虑建模时,发现当将这些反应附加到当前的表面机理上时,可以改善整体模型。关于抑制氢气存在下的碳气化反应的动力学,发现与实验数据合理地吻合。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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