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Influence of Chemical Kinetics on Predictions of Performance of Syngas Production From Fuel-Rich Combustion of CO2/CH4 Mixture in a Two-Layer Burner

机译:化学动力学对两层燃烧器中CO2 / CH4混合物富含CO2 / CH4混合物燃料燃烧性能的预测的影响

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Numerical investigations on partial oxidation combustion of CO2/CH4 mixture were executed for a two-layer burner using a two-dimensional two-temperature model with different detailed chemical reaction mechanisms that are DRM 19, GRI-Mech 1.2 and GRI-Mech 3.0. Attention was focused on the influence of these mechanisms on predictions of the temperature distributions in the burner, chemical structure as well as syngas production. The equivalence ratio was a fixed value of 1.5, while the ratio of CO2 to CH4 was changed from 0 to 1. The predicted results were compared with the available experimental data. It was revealed that the chemical reaction mechanisms have little effect on the temperature distribution in the burner except for the exothermic zone. It indicted that the smaller kinetic DRM 19 can precisely predict the temperature distributions in the burner, using DRM 19 was recommended to save computational time when the detailed components of the syngas was not taken into consideration. In addition, all the three mechanisms predicted the same trend of molar fraction of CO, H2 and CO2 with experimental results. Good agreement between the experiment and predictions of major species was obtained by GRI-Mech 1.2 and GRI-Mech 3.0, the two mechanisms had the same accuracy in predicting CO, H2 and CO2 production. However, computation with DRM 19 under-predicted the molar fraction of CO and H2. Furthermore, it was shown that the conductivity of the porous media has significant effect on the syngas production. In general, the temperature was increased as the thermal conductivity of the porous media is reduced and the H2 production was increased.
机译:使用具有不同详细的化学反应机制的二维双温模型对二层燃烧器进行二层燃烧器的数值研究,该双层燃烧器是DRM 19,GRI-MECH 1.2和GRI-MECH 3.0。注意力集中在这些机制对燃烧器,化学结构以及合成气生产中温度分布的预测的影响。等效比为1.5的固定值,而CO2至CH4的比率从0变为1.将预测结果与可用的实验数据进行了比较。据透露,除了放热区外,化学反应机理对燃烧器中的温度分布几乎没有影响。因此,较小的动力学DRM 19可以精确地预测燃烧器中的温度分布,建议使用DRM 19来节省合成气的详细组件的计算时间。此外,所有三种机制都预测了具有实验结果的CO,H 2和CO 2的摩尔分数相同的趋势。通过GRI-MECH 1.2和GRI-MECH 3.0获得了实验与主要物种的预测之间的良好一致性,这两种机制在预测CO,H2和CO2生产中具有相同的准确性。然而,用DRM 19的计算预测了CO和H2的摩尔分数。此外,显示多孔介质的电导率对合成气产生显着影响。通常,随着多孔介质的导热率降低并且H 2产生增加,温度升高。

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