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STRUCTURE OF CRYOGENIC FLAMES AT ELEVATED PRESSURES

机译:高压下低温火焰的结构

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This paper presents new experimental results on cryogenic jet flames formed by a coaxial injector at a pressure of 70 bar, which approaches the pressures found in rocket engines. This element, fed with liquid oxygen and gaseous hydrogen, is placed in a square combustion chamber equipped with quartz windows. The flame is examined via spectroscopy, OH* emission, and backlighting, the aim being to provide basic information on the flame structure. It is found that some of the OH* emission is absorbed by the OH radicals present in the flame. A detailed examination of this effect is presented, in which it is shown that, for this turbulent flame, the Abel transform gives the position of the intense reaction region, whether or not absorption is signficant. The flame is attached to the oxygen injector, as at low pressure. At high pressure, flame expansion is reduced compared with low pressure and is also less dependent on the momentum flux ratio between the hydrogen and the oxygen streams. An analysis of the relevant Damkoehler numbers suggests that this is because the rate of combustion is mainly controlled by large-scale turbulent mixing at high pressure, and it is dominated by jet break-up, atomization, and vaporization at low pressures. Jet break-up is particularly dependent on the momentum flux ratio. Finally, the mean volumetric heat release rates and flame surface density in the experimental facility are estimated.
机译:本文介绍了同轴喷射器在70 bar的压力下形成的低温喷射火焰的新实验结果,该压力接近火箭发动机中发现的压力。装有液态氧和气态氢的该元素被放置在配备石英窗的方形燃烧室中。通过光谱,OH *发射和背光检查火焰,目的是提供有关火焰结构的基本信息。发现一些OH *排放物被火焰中存在的OH自由基吸收。对此效果进行了详细检查,结果表明,对于这种湍流火焰,无论吸收是否重要,Abel变换都将给出强烈反应区域的位置。火焰在低压下附着在氧气喷射器上。在高压下,与低压相比,火焰膨胀减少了,并且也较少依赖于氢气和氧气流之间的动量通量比。对相关的Damkoehler数的分析表明,这是因为燃烧速率主要由高压下的大规模湍流混合控制,并且其主要由低压下的射流破裂,雾化和汽化控制。射流破裂特别取决于动量通量比。最后,估算了实验设备中的平均体积放热速率和火焰表面密度。

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