乙烯-氧气混合物爆炸极限中的臭氧掺杂和负温度响应。

IF 2.7 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry A Pub Date : 2024-10-31 Epub Date: 2024-10-22 DOI:10.1021/acs.jpca.4c04778
Jianhang Li, Chenyu Li, Wenkai Liang, Wenhu Han, Chung K Law
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引用次数: 0

摘要

在这项工作中,通过爆炸极限曲线对添加臭氧(O3)对乙烯-氧气(C2H4-O2)混合物的影响进行了计算研究。结果表明,添加微量臭氧(在氧化剂中的摩尔分数为 0.06%)会将 C2H4-O3-O2 混合物的爆炸极限转移到低温状态。臭氧浓度的进一步增加会逐渐加强第二极限的负温度系数 (NTC) 行为。这是因为爆炸极限主要由乙烯臭氧分解反应控制,而灵敏度分析和化学反应速率扰动方法都揭示了具体的动力学原因。此外,研究还表明,随着当量比的增加,微量臭氧添加的爆炸极限曲线围绕交叉点逆时针旋转,而随着臭氧添加量的增加,爆炸极限曲线变得复杂,并在第二极限上出现 NTC 行为。此外,还研究了氮气 (N2)、氩气 (Ar)、二氧化碳 (CO2) 和水 (H2O) 的稀释对爆炸极限的影响。为了阐明不同爆炸极限制度的不同壁面消除效应,研究了六种自由基(H、O、OH、HO2、H2O2 和 HCO)的表面反应的影响,发现主要的自由基是 H 和 HO2。H 自由基对第一个爆炸极限有重大影响,而 HO2 自由基则影响整个爆炸极限。
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Ozone Doping and Negative Temperature Response in the Explosion Limits of Ethylene-Oxygen Mixtures.

In this work, effects of ozone (O3) addition on ethylene-oxygen (C2H4-O2) mixtures are computationally studied through the explosion limit profiles. The results show that the addition of minute quantities of ozone (with a mole fraction of 0.06% in the oxidizer) shifts the explosion limit of the C2H4-O3-O2 mixtures to the low-temperature regime. Further increases in the ozone concentration gradually strengthen the negative temperature coefficient (NTC) behavior at the second limit. That is because the explosion limit is primarily controlled by the ethylene ozonolysis reaction, and both the sensitivity analysis and chemical reaction rate perturbation method reveal specific kinetic reasons. Furthermore, it is shown that with the increasing equivalence ratio, the explosion limit curve with minute ozone addition rotates counterclockwise around a crossover point, while the explosion limit curve becomes complicated and the NTC behavior appears on the second limit with larger quantities of ozone addition. Furthermore, the effects of dilutions of nitrogen (N2), argon (Ar), carbon dioxide (CO2), and water (H2O) on the explosion limits are also studied. To elucidate the different wall elimination effects of different explosion limit regimes, the impacts of surface reactions of six radicals (H, O, OH, HO2, H2O2, and HCO) have been examined and the dominant radicals are found to be H and HO2. The H radicals significantly influence the first explosion limit, while the HO2 radicals impact the entire explosion limit.

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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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