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Experimental and numerical investigation of convection heat transfer in transpiration cooling

机译:蒸发冷却中对流换热的实验和数值研究

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摘要

The turbulent flow and heat transfer in a rectangular channel without and with transpiration cooling was investigated experimentally and numerically. The two-layer k–ε model was used to calculate the turbulent velocity and thermal characteristics of the main flow. The numerical results corresponded well with the experimental data including the surface temperature and heat transfer coefficients for the channel with and without transpiration cooling. The numerical results showed that the transpiration cooling greatly increases the boundary layer thickness and reduces the wall skin friction. The tests and calculations showed that increasing coolant blowing ratio sharply reduced both the wall temperature and the convection heat transfer coefficient. For a blowing ratio of 1%, the convection heat transfer coefficient was reduced by about 50%. The numerical and experimental results also agreed well with known correlations for constant thermophysical properties. The influence of variable properties on the convection heat transfer in transpiration cooling at high gas temperatures was also investigated.
机译:实验和数值研究了在没有和有蒸发冷却的情况下矩形通道中的湍流和热传递。两层k–ε模型用于计算主流的湍流速度和热特性。数值结果与包括有和没有蒸腾冷却的通道的表面温度和传热系数的实验数据非常吻合。数值结果表明,蒸腾冷却大大增加了边界层的厚度,减小了壁皮的摩擦。测试和计算表明,增加冷却剂的吹送比会急剧降低壁温和对流传热系数。对于1%的吹风率,对流传热系数降低了约50%。数值和实验结果也与恒定热物理性质的已知相关性非常吻合。还研究了在高温气体条件下,不同性质对蒸发冷却中对流换热的影响。

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