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Pore-scale investigation on the heat-storage characteristics of phase change material in graded copper foam

机译:钻孔铜泡沫中相变材料蓄热特性的孔径调查

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The mechanisms responsible for the effect of metal foam, having a varying degree of porosity, on the phase change process in a phase change material (PCM) are not clearly understood. In this work, the pore-scale heat storage performance of the graded metal foams saturated with paraffin has been investigated using the computational fluid dynamics (CFD) method. The results demonstrate that the metal foam with a graded porosity accelerates the heat storage of PCM. In terms of the gradient dimension of the metal foam, the full melting time of the negative model 2 has been observed to be shortened by 2.6% as compared to the uniform model 1 and reduced by 15.5% as compared to the positive model 3. This is because the smaller the porosity of metal foam is, the faster the melting conducts. For the negative model, the relatively small porosity region is closer to the heat source than the large porosity region, which makes the heat transfer enhancement effect more evident than the weakening effect. Meanwhile, the full melting time shows an initial increasing trend, followed by a decrease for an increase in the porosity gradient difference. The optimal gradient difference is found to be -0.12 at the average porosity of 0.86 in this study.
机译:不清楚地清楚地理解负责在相变材料(PCM)中的相变过程上具有不同程度的孔隙率的金属泡沫的作用的机制。在这项工作中,使用计算流体动力学(CFD)方法研究了用石蜡饱和的渐变金属泡沫的孔径储热性能。结果表明,具有梯度孔隙率的金属泡沫加速了PCM的储热量。就金属泡沫的梯度尺寸而言,与均匀模型1相比,观察到负模型2的全部熔化时间缩短2.6%,与阳性模型3相比减少了15.5%是因为金属泡沫的孔隙率越小,熔化的传导越快。对于负模型,相对较小的孔隙率区域比大孔隙率区域更靠近热源,这使得传热增强效果比弱化效果更明显。同时,全部熔化时间显示出初步的趋势,然后减少孔隙率梯度差的增加。在本研究中,在平均孔隙率为0.86的平均孔隙度下发现最佳梯度差异。

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