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Investigation of a dynamic diffusion flame of H_2 in air with laser diagnostics and numerical modeling

机译:利用激光诊断和数值模拟研究空气中H_2的动态扩散火焰

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Detailed studies of flame-vortex interactions play a vital role in improving our understanding of turbulent combustion. A combined experimental and numerical study was conducted on a low-speed, buoyant, jet diffusion flame of hydrogen in air to investigate the vortex-flame interaction and the effects of preferential diffusion on the flame's structure. A time-dependent, axisymmetric mathematical model with detailed transport processes and a chemical-kinetics mechanism was used to simulate the dynamics of the flame. Single-shot measurements of temperature and the concentrations of molecular hydrogen (H_2), the pollutant nitric oxide (NO), atomic oxygen (O), atomic hydrogen (H), and the hydroxyl radical (OH) were made using optical techniques such as coherent anti-Stokes Raman scattering, degenerate four-wave mixing, and planar laser-induced fluorescence. Temperature and mole fractions of different species are presented in two-dimensional contour maps and compared with the numerical predictions. The model predicted the behavior of the experimentally observed dynamic flame quite well, including variations in temperature and molar concentrations of fuel and tracer species such as H, OH, and NO. Discrepancies in the concentration of O atoms were also noted.
机译:对火焰-涡旋相互作用的详细研究在增进我们对湍流燃烧的理解中起着至关重要的作用。在空气中低速,浮力的喷气扩散火焰上进行了组合的实验和数值研究,以研究涡流-火焰相互作用以及优先扩散对火焰结构的影响。具有时间依赖性的轴对称数学模型具有详细的传输过程和化学动力学机制,用于模拟火焰的动力学。使用光学技术对温度和分子氢(H_2),污染物一氧化氮(NO),原子氧(O),原子氢(H)和羟基自由基(OH)的浓度进行单次测量相干的反斯托克斯拉曼散射,简并四波混频和平面激光诱导的荧光。在二维等值线图中显示了不同物种的温度和摩尔分数,并与数值预测结果进行了比较。该模型很好地预测了实验观察到的动态火焰的行为,包括温度和燃料和示踪物质(例如H,OH和NO)的摩尔浓度的变化。还注意到O原子浓度的差异。

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