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Initiation of Laminar Flames in Near-Limit H_2/O_2/H_2O Mixtures

机译:近限H_2 / O_2 / H_2O混合物中层流火焰的起爆

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A one-dimensional spherical symmetricla flame model including a detailed chemical mechanism for hydrogen oxidation, mutlispecies transport, and thermal radiation is used to examine the ignition and flame propagation properties for homogeneous hydrogen/oxygen/steam mixtures at elevated temperatures up to about 500 K and pressures ranging from 0.15 to 3 MPa. The model takesinto account 26 elementary reactions and absorption of thermal radiation by water moelcules. Time-dependent conservation equations of mass, species, and energy are integrated numericlaly to investigate the details of flame structure and calculate the flame speed. Kinetic sensitivity analysis of the burning velocikty is used to elucidate the importance of individual elementary reactions at various pressures. laminar flame propagation in stoichiometric mixtures heavily diluted with steam is investigated near the flammability limit through numerical simulation of the evolution of the spherical flame kernel initiated by a spatially localized ignition source. Critical conditions for flame propagation are analyzxed in terms of ignition energy and flame kernel radius. The effect of pressure on these critical conditions is revelaed and investigated. The predicted ignition energy and limiting hydrogen concentration nonmonotonically depend on pressure. The computed results are in reasonable agreement with available experimental data on flammability limits.
机译:使用一维球形对称火焰模型,其中包括用于氢氧化,多物种迁移和热辐射的详细化学机理,以检查在高达约500 K的高温下均质氢/氧/蒸汽混合物的点火和火焰传播特性。压力范围为0.15至3 MPa。该模型考虑了26种基本反应和水分子对热辐射的吸收。质量,种类和能量随时间变化的守恒方程被数值积分,以研究火焰结构的细节并计算火焰速度。燃烧速度的动力学敏感性分析用于阐明各种压力下单个基本反应的重要性。通过对由空间局部点火源引发的球形火焰核演化的数值模拟,研究了在接近可燃性极限的情况下,被蒸汽严重稀释的化学计量混合物中层流火焰的传播。根据点火能量和火焰核半径分析了火焰传播的临界条件。揭示并研究了压力对这些关键条件的影响。预测的点火能量和极限氢浓度非单调取决于压力。计算结果与可燃极限的可用实验数据合理地吻合。

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