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Numerical comparison of hydrogen-air reaction mechanisms for unsteady shock-induced combustion applications

机译:氢-空气反应机理在非稳态冲击诱导燃烧中的数值比较

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An unsteady shock-induced combustion (SIC) is characterized by the regularly oscillating combustion phenomenon behind the shock wave supported by the blunt projectile flying around the speed of Chapman-Jouguet detonation wave. The SIC is the coupling phenomenon between the hypersonic flow and the chemical kinetics, but the effects of chemical kinetics have been rarely reported. We compared hydrogen-air reaction mechanisms for the shock-induced combustion to demonstrate the importance of considering the reaction mechanisms for such complex flows. Seven hydrogen-air reaction mechanisms were considered, those available publically and used in other researches. As a first step in the comparison of the hydrogen combustion, ignition delay time of hydrogen-oxygen mixtures was compared at various initial conditions. Laminar premixed flame speed was also compared with available experimental data and at high pressure conditions. In addition, half-reaction length of ZND (Zeldovich-Neumann-Doring) detonation structure accounts for the length scale in SIC phenomena. Oscillation frequency of the SIC is compared by running the time-accurate 3rd-order Navier-Stokes CFD code fully coupled with the detailed chemistry by using four levels of grid resolutions.
机译:非稳态冲击诱导燃烧(SIC)的特征在于,冲击波背后的规则振荡燃烧现象由钝的弹丸围绕着查普曼·乔格(Chapman-Jouguet)爆轰波的速度飞行而支撑。 SIC是高超声速流与化学动力学之间的耦合现象,但是化学动力学的影响鲜有报道。我们比较了氢-空气反应机理引起的冲击燃烧,以证明考虑这种复杂流动的反应机理的重要性。考虑了七个氢-空气反应机理,这些机理可公开获得并用于其他研究。作为比较氢燃烧的第一步,在各种初始条件下比较了氢-氧混合物的点火延迟时间。还将层流预混火焰速度与可获得的实验数据以及在高压条件下进行了比较。此外,ZND(Zeldovich-Neumann-Doring)爆炸结构的半反应长度占SIC现象的长度尺度。通过运行时间精确的三阶Navier-Stokes CFD代码,并使用四个级别的网格分辨率,将SIC的振荡频率与详细的化学反应完全结合,可以对SIC的振荡频率进行比较。

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