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Heat flux from stagnation-point hydrogen-methane-air flames: experiment and modelling

机译:停滞点氢气 - 甲烷 - 空气火焰的热通量:实验和建模

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Hydrogen-methane-air flames were studied in stagnation-point geometry. Light induced phosphorescence from thermographic phosphors was used to study the wall temperatures and heat fluxes from nearly one-dimensional flat premixed flames. The studied flames were stoichiometric methane-air flames with 10%, 25%, 50% and 75% hydrogen as well as a pure hydrogen flame at ambient pressure. The flames were burning in a stagnation-point arrangement against a water cooled plate. The central part of this plate was an alumina ceramic plate coated from both sides with chromium doped alumina (ruby) and excited with a Nd:YAG laser or a green light emitting diode (LED) array to measure the wall temperature from both sides and thus the heat flux rate from the flame. The cold gas velocity was varied from 0.1 m/s to 1.2 m/s. The measured heat flux rates indicate the change of the flame stabilization mechanism from a burner stabilized to a stagnation plate stabilized flame. Flame temperatures were also measured using OH-LIF. The results were compared to the modeling results of a one dimensional stagnation-point flow, with a detailed reaction mechanism. This geometry may be well suited for further studies of the elementary flame wall interaction. The flame temperatures modeled were generally around 200 K lower than those measured.
机译:在停滞点几何中研究了氢甲烷 - 空气火焰。来自热成像磷光体的光诱导磷光研究从几乎一维扁平的预混火焰中研究壁温和热量。研究的火焰是化学计量的甲烷 - 空气火焰,10%,25%,50%和75%氢以及环境压力下的纯氢火焰。火焰在抵靠水冷板的停滞点布置中燃烧。该板的中心部分是从掺杂铬氧化铝(Ruby)的两侧涂覆的氧化铝陶瓷板,并用Nd:YAG激光器或绿色发光二极管(LED)阵列激发,从而测量两侧的壁温来自火焰的热通量速率。冷气体速度从0.1米/秒变化至1.2米/秒。测量的热通量速率表示从稳定的燃烧器稳定到停滞板稳定的火焰的燃烧器的变化。使用OH-LIF,还测量火焰温度。将结果与一维停滞点流的建模结果进行比较,具有详细的反应机制。这种几何形状可以很好地适用于对基本火焰壁相互作用的进一步研究。模拟的火焰温度通常比测量值低约200 k。

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