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Investigation of the heat transfer coefficient in a transpiration film cooling with chemical reactions

机译:用化学反应冷却蒸发膜中的传热系数

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摘要

In modern high performance engines (gas turbines, rocket combustors) the probability of chemical reactions inside a cooling film increases. In the past, the enhanced heat flux in a reactive cooling film is estimated usually using the difference between the hottest temperature inside the boundary layer and the wall temperature as driving temperature difference, assuming the heat transfer coefficient to be the same as in an inert configuration. However, experiments have shown that the heat transfer coefficient of a reactive cooling film differs from an inert one. The objective of this work is to investigate the heat transfer coefficient in a reactive boundary layer in more detail. The surface heat flux of a reactive laminar boundary layer on a transpiration cooled flat plate is analytically derived using boundary layer theory. The results of the simplified boundary layer theory are compared to CFD data for different reactive mixtures. In a reactive cooling film emanating with a mixture fraction Z = 1 from a porous surface assuming Burke-Schumann chemistry, the heat transfer coefficient is mainly enhanced by a factor of 1 /(I - Z_(st)), where Z_(st) is the mixture fraction at stoichiometric mixture. This factor represents the location of the maximum temperature within the boundary layer.
机译:在现代高性能发动机(燃气轮机,火箭燃烧器)中,冷却膜内部发生化学反应的可能性增加。过去,通常假设边界层内部的最热温度与壁面温度之差作为驱动温度差,来估计反应性冷却膜中的增强热通量,并假设其传热系数与惰性构造相同。 。然而,实验表明,反应性冷却膜的传热系数与惰性膜不同。这项工作的目的是更详细地研究反应性边界层中的传热系数。利用边界层理论分析推导了蒸发冷却平板上反应性层状边界层的表面热通量。将简化边界层理论的结果与不同反应性混合物的CFD数据进行比较。在假设Burke-Schumann化学性质的反应性冷却膜中,其混合分数从多孔表面散发出来的Z = 1,其传热系数主要提高了1 /(I-Z_(st)),其中Z_(st)是化学计量比的混合比。该因子表示边界层内最高温度的位置。

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