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An experimental study on the efficiency of transpiration cooling in laminar and turbulent hypersonic flows

机译:层流和湍流高超声速流中蒸发冷却效率的实验研究

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摘要

An experimental study on the efficiency of transpiration cooling in hypersonic laminar and turbulent flow regimes is carried out in the Hypersonic Windtunnel Cologne with a focus on the aerothermal problems downstream of the cooled model part. The model is made of a material of low thermal conductivity (PEEK) with an integrated probe of a porous material. The experimental setup allows the direct comparison of the thermal behavior of transpiration cooling to a well-defined and radiatively cooled reference surface. Experiments are performed at Mach number of 6 and two different Reynolds numbers. Air, argon and helium are used as coolants at various flow rates, in order to identify the influence of coolant medium on cooling efficiency. The cooling efficiency of air and argon is comparable. Helium provides significantly higher cooling efficiency at the same blowing ratio, i.e. same coolant mass flow rate. The experimental data shows that the efficiency of the transpiration cooling in turbulent flows is much lower than in laminar flow.
机译:在高超声速风洞科隆进行了高超声速层流和湍流状态下的蒸腾冷却效率的实验研究,重点是冷却的模型部分下游的空气热问题。该模型由低导热率(PEEK)的材料制成,并带有集成的多孔材料探头。实验设置允许直接比较蒸腾冷却与定义明确且辐射冷却的参考表面的热行为。实验以6的马赫数和两个不同的雷诺数进行。空气,氩气和氦气用作各种流速的冷却剂,以便确定冷却剂介质对冷却效率的影响。空气和氩气的冷却效率相当。在相同的吹气比(即相同的冷却剂质量流量)下,氦气可显着提高冷却效率。实验数据表明,湍流中的蒸发冷却效率远低于层流中的蒸发冷却效率。

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