合成气下限自燃温度及化学动力学机理修正的数值研究

S. Jang, J. Park, Sang Hyeon Han, Hong-Jip Kim, K. Jung, C. Yoo
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摘要

本文采用二维数值分析方法对合成气低温自动点火进行了数值研究。前人的研究表明,在合成气和干燥空气共流射流实验中,在860k以上可以观察到自燃现象。然而,用现有的化学机制无法预测在这个低温范围内的自动点火。实验结果与数值结果的不一致被认为是由于化学动力学机理的不准确造成的。对各化学动力学机理进行了点火延迟时间预测和灵敏度分析,验证了实验结果与数值结果不一致的原因。采用不同机制计算的结果表明,点火延迟时间存在显著差异。本研究旨在分析差异的原因,以预测合成气低压低温区自动点火,完善化学动力学机制。对影响点火延迟时间的反应步骤进行了灵敏分析,并对反应步骤的反应速率进行了修正。通过修正的化学动力学机理,我们可以从二维数值结果中识别出低温区域的自动点火。利用化学爆炸模态分析(CEMA)对二维数值分析结果进行了验证,修正了化学动力学机理。通过验证,所得的λexp、EI和PI均显示出合理的结果,因此我们期望改进后的化学动力学机理可以应用于各种低温区域。
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A Numerical Study on the Low Limit Auto-Ignition Temperature of Syngas and Modification of Chemical Kinetic Mechanism
In this study, the auto ignition with low limit temperature of syngas has been numerically investigated using a 2-D numerical analysis. Previous study showed that auto ignition was observed at above 860 K in co-flow jet experiments using syngas and dry air. However, the auto ignition at this low temperature range could not be predicted with existing chemical mechanisms. Inconsistency of the auto ignition temperature between the experimental and numerical results is thought to be due to the inaccuracy of the chemical kinetic mechanism. The prediction of ignition delay time and sensitivity analysis for each chemical kinetic mechanism were performed to verify the reasons of the inconsistency between the experimental and numerical results. The results which were calculated using the various mechanisms showed significantly differences in the ignition delay time. In this study, we intend to analyze the reason of discrepancy to predict the auto ignition with low pressure and low temperature region of syngas and to improve the chemical kinetic mechanism. A sensitive analysis has been done to investigate the reaction steps which affected the ignition delay time significantly, and the reaction rate of the selected reaction step was modified. Through the modified chemical kinetic mechanism, we could identify the auto ignition in the low temperature region from the 2-D numerical results. Then CEMA (Chemical Explosive Mode Analysis) was used to validate the 2-D numerical analysis with modified chemical kinetic mechanism. From the validation, the calculated λexp, EI, and PI showed reasonable results, so we expect that the modified chemical kinetic mechanism can be used in various low temperature region.
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