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Simulation of supersonic Ethylene-Hydrogen and air auto-ignition flame using skeletal mechanism

机译:骨架机制对超音速乙烯氢和空气自燃火焰的模拟

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Three ethylene-air combustion mechanisms were validated against detailed mechanism USC-Mech II, and the results showed that the three mechanisms were not appropriate for combustion of ethylene-hydrogen/air. A 38-species skeletal mechanism was developed for ethylene-hydrogen/air based on the detailed mechanism USC-Mech II. A good agreement is found between the skeletal mechanism and the detailed mechanism in terms of the ignition delay time and the laminar flame speed over a wide range of parameters. After the computational methodology was validated with a supersonic hydrogen-air auto-ignition flame, the skeletal mechanism was employed to simulate the auto-ignition of ethylene-hydrogen mixtures in a hot supersonic airflow. The results showed satisfactory agreement with experimental data, which demonstrates that the skeletal mechanism could reasonably predict the ignition position. An analysis of the flame structure was conducted with respect to the distributions of the species, heat release, pressure, and temperature. Investigations into various parameters revealed that auto-ignition occurred in the most reactive mixture fraction with the minimum ignition delay time rather than the stoichiometric mixture fraction during supersonic combustion.
机译:针对详细机理USC-Mech II验证了三种乙烯-空气燃烧机理,结果表明这三种机理不适用于乙烯-氢/空气燃烧。基于详细机理USC-Mech II,开发了一种38种物种的乙烯-氢气/空气骨架。在广泛的参数范围内,在点火延迟时间和层流火焰速度方面,骨骼机理与详细机理之间找到了很好的一致性。在用超声速氢气-空气自燃火焰验证了计算方法之后,采用骨架机制来模拟热超声速气流中乙烯-氢混合物的自燃。结果与实验数据吻合良好,表明骨架机理可以合理预测点火位置。就物质的分布,放热,压力和温度进行了火焰结构分析。对各种参数的研究表明,在超音速燃烧过程中,自燃发生在反应性最强的混合物中,点火延迟时间最短,而不是化学计量的混合物。

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