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Thermal Transport in High Porosity Cellular Metal Foams

机译:高孔隙度蜂窝金属泡沫中的热传递

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The heat dissipation capability of highly porous cellular metal foams with open cells subject to forced air convection is studied using a combined experimental and analytical approach. The cellular morphologies of six FeCrAlY (an iron-based alloy) foams and six copper alloy foams with a range of pore sizes and porosities are quantified with the scanning electronic microscope and image analysis. Experimental measurements on pressure drop and heat transfer for copper foams are carried out. A numerical model for forced convection across open-celled metal foams is subsequently developed, and the predictions are compared with those measured. Reasonably good agreement with test data is obtained, given the complexity of the cellular foam morphology and the associated momentum/energy transport. The results show that cell size has a more significant effect on the overall heat transfer than porosity. An optimal porosity is obtained based on the balance between pressure drop and overall heat transfer, which decreases as the Reynolds number is increased.
机译:采用实验和分析相结合的方法,研究了具有开孔的高孔隙度多孔金属泡沫在强制空气对流下的散热能力。用扫描电子显微镜和图像分析对六种FeCrAlY(铁基合金)泡沫和六种铜合金泡沫的微孔形态进行了定量,这些泡沫具有一定的孔径和孔隙率。进行了泡沫铜压降和传热的实验测量。随后建立了跨开孔金属泡沫强制对流的数值模型,并将预测值与实测值进行了比较。考虑到泡沫泡沫形态的复杂性和相关的动量/能量传输,获得了与测试数据的合理良好一致性。结果表明,泡孔尺寸对整体传热的影响比孔隙度更大。基于压降和总传热之间的平衡可获得最佳孔隙率,该平衡随着雷诺数的增加而降低。

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