首页> 外文期刊>International Journal of Heat and Mass Transfer >Experimental and numerical investigations on the effect of porosity and PPI gradients of metal foams on the thermal performance of a composite phase change material heat sink
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Experimental and numerical investigations on the effect of porosity and PPI gradients of metal foams on the thermal performance of a composite phase change material heat sink

机译:金属泡沫孔隙率和PPI梯度对复合相变材料散热器热性能影响的实验性和数值研究

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This paper reports the results of an experimental and numerical study on the thermal performance of a metal foam based composite phase change material (PCM) heat sink cylindrical in shape with porosity and PPI (pores per inch) density gradients. Studies are conducted on different configurations of composite PCM made of an open-cell aluminum metal foams with porosities of 0.9, 0.94 and 0.97 and PPI of 8, 14 and 20 encapsulated with n-eicosane as the PCM. Experiments are carried out on the PCM heat sink heated from the bottom for different configurations of metal foams with a uniform porosity and non-uniform porosity created with layer wise arrangement of metal foams from the bottom to the top. Complementary three-dimensional numerical simulations have been conducted using the enthalpy porosity methodology with a non-thermal equilibrium model to understand the melting and solidification dynamics of PCM while melting (charging) and solidification (discharging) respectively. Heat sink configurations with uniform porosity, and porosity gradient created with bi-layer arrangement of metal foams have been simulated numerically. Further, the numerical simulations have been extended to study heat sink configurations containing metal foams with uniform PPI density and PPI density gradient. From the results, it is seen that the case of non-uniform variation in porosity (decreasing from the bottom to the top) with constant PPI density and the case of non-uniform PPI density (increasing from the bottom to the top) with constant porosity show superior performance up to 28 and 45% over the heat sink configurations with uniform porosity and PPI density respectively in the charging cycle in terms of the time to reach a setpoint temperature. From the numerical simulations, it is seen that the melt fraction of PCM significantly changes the convection velocity cells, which affects the melting dynamics of PCM. Additional numerical simulations have been conducted on PCM heat sink with non-uniform porosity (i.e. decreasing porosity from the bottom to the top) and non-uniform PPI density (i.e increasing PPI density from the bottom to the top) gradients created with three layers (tri-layer) of metal foams. The results show that the PCM heat sink with non-uniform porosity and non-uniform PPI density gradients created with tri-layer metal foams have almost the same performance as a bi-layer metal foam with enhancement ratio up to 4 and 4.4 times respectively over the base line case (i.e. PCM heat sink without metal foams). In the discharging cycle, it is seen that the porosity and PPI gradients do not have any effect on the thermal performance of the heat sink.
机译:本文报道了一种关于金属泡沫基于复合相变材料(PCM)散热器圆柱形状的实验性和数值研究的结果,孔隙率和PPI(每英寸孔)密度梯度。在具有0.9,0.94和0.97和PPI的孔隙率的不同配置的复合PCM的不同构造进行了研究,其8,14和20的PPI,作为PCM。在从底部加热的PCM散热器上进行实验,用于不同的金属泡沫配置,具有均匀的孔隙率和使用从底部到顶部的金属泡沫的层明智的布置产生的非均匀孔隙率。已经使用具有非热平衡模型的焓孔隙率方法进行了互补的三维数值模拟,以了解PCM的熔化和凝固动态,同时熔化(充电)和凝固(放电)。在数值上模拟了具有均匀孔隙率的散热孔和用双层布置产生的孔隙率梯度,并在数值上进行了模拟。此外,已经扩展了数值模拟,以研究含有金属泡沫的散热器构型,具有均匀的PPI密度和PPI密度梯度。从结果中,可以看出,具有恒定PPI密度的孔隙率(从底部到顶部的底部到顶部的底部到顶部的底部到顶部的情况下的情况(从底部到顶部增加到顶部)的情况下孔隙率在散热器配置中显示出高达28和45%的优异性能,在充电循环中分别在达到设定点温度的情况下分别在充电循环中进行均匀的孔隙率和PPI密度。从数值模拟中,可以看出,PCM的熔体分数显着改变对流速度细胞,这影响了PCM的熔化动力学。已经在PCM散热器上进行了另外的数值模拟,具有非均匀的孔隙率(即从底部到顶部的孔隙率降低)和不均匀的PPI密度(即从底部到顶部的PPI密度增加,以三层产生的梯度(金属泡沫的三层)。结果表明,用三层金属泡沫产生的具有非均匀孔隙率和非均匀PPI密度梯度的PCM散热器与分别高达4和4.4次的双层金属泡沫具有几乎相同的性能基线外壳(即PCM散热器没有金属泡沫)。在放电循环中,可以看出,孔隙率和PPI梯度对散热器的热性能没有任何影响。

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