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Experimental and numerical investigation of transpiration cooling for sintered porous flat plates

机译:烧结多孔平板蒸发冷却的实验与数值研究

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The flow and heat transfer characteristics of transpiration cooling through sintered porous flat plates with particle diameters d_p = 40 and 90 μm was investigated experimentally and numerically with dry air as the coolant stream. The effects of injection rate, solid matrix thermal conductivity and particle diameter on the external surface temperature distribution were investigated. The experimental results show that even a small amount of coolant injection notably reduces the heat transfer from the hot gases. The cooling effectiveness increased with increasing injection rate, with the increases becoming smaller as the gas injection rate was increased. The temperature and cooling effectiveness distributions along the transpiration surface exhibited slightly different tendencies for the four sintered porous walls due to the different thermal conductivities and the different particle diameters of the solid matrix. The temperature distribution on the porous bronze plate was more uniform than that on the sintered stainless steel plates. The cooling performance for the porous wall with the smaller particle diameters was better mainly due to the enhanced convection heat transfer inside the wall.
机译:以干燥空气作为冷却剂流,通过实验和数值研究了蒸发冷却通过粒径为d_p = 40和90μm的多孔多孔平板的流动和传热特性。研究了注入速率,固体基质热导率和粒径对外表面温度分布的影响。实验结果表明,即使少量的冷却液注入也明显减少了来自热气体的热传递。冷却效率随着注入速率的增加而增加,并且随着气体注入速率的增加而增加,冷却效率变小。由于固体基质的热导率不同和粒径不同,因此沿蒸腾表面的温度和冷却效率分布对于四个烧结多孔壁显示出略有不同的趋势。多孔青铜板上的温度分布比烧结不锈钢板上的温度分布更均匀。具有较小粒径的多孔壁的冷却性能更好,这主要是由于增强了壁内的对流传热。

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