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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >An Experimental Investigation on Transpiration Cooling Based on the Multilaminated Sintered Woven Wire Mesh Structures
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An Experimental Investigation on Transpiration Cooling Based on the Multilaminated Sintered Woven Wire Mesh Structures

机译:基于多层烧结编织网结构的蒸腾冷却实验研究

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This paper experimentally investigated a transpiration cooling performance of double-laminated and triple-laminated sintered woven wire mesh structures with different porosities and arrangements. Each laminated test piece was made up of two or three layers, and each layer has different porosities and same thickness. The porosities of layers include 25.6%, 37.1%, 46.9%, and 55.1%. All the tests were performed with air. The flow rate and temperature of main flow were kept at 300 kg/hr and 90℃, respectively. The blowing ratio between the cooling air and main flow approximately varied from 1.2% to 9%. The average surface temperature of test pieces was captured by an infrared thermal imager. The cooling effectiveness for each specimen was calculated and analyzed. Moreover, the pressure drop of several specimens was analyzed with modified Darcy equation. The results showed that the flow behavior agrees well with the modified Darcy equation. The average porosity of the test piece has a great influence on flow behavior, and the air flow direction through a double-laminated porous medium has only slight influence on pressure drop in this study. The results also indicated that the cooling efficiency increases as the average porosity increases. The arrangement of layers affects the transpiration cooling performance, and the cooling efficiency of the laminated model is affected by each laminates together.
机译:本文通过实验研究了具有不同孔隙率和排列的双层和三层烧结机织丝网结构的蒸腾冷却性能。每个层压的测试件由两层或三层组成,并且每一层具有不同的孔隙率和相同的厚度。层的孔隙率包括25.6%,37.1%,46.9%和55.1%。所有测试均在空气中进行。主流流量和温度分别保持在300 kg / hr和90℃。冷却空气和主流之间的吹风比大约在1.2%至9%之间变化。用红外热像仪捕获试样的平均表面温度。计算并分析每个样品的冷却效率。此外,使用修正的达西方程分析了几个样本的压降。结果表明,流动特性与修正的达西方程式吻合良好。在这项研究中,试件的平均孔隙率对流动行为有很大的影响,而通过双层多孔介质的空气流动方向对压降的影响很小。结果还表明,冷却效率随平均孔隙率的增加而增加。层的排列会影响蒸腾的冷却性能,并且层合模型的冷却效率会受到每个层合在一起的影响。

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