Thermal analysis on metal foams
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摘要: 提出了一種高孔隙率開孔泡沫金屬的結構簡化幾何模型,運用熱電比擬理論在胞孔尺度上分析并求解了有效熱導率的計算表達式,并根據已有實驗數據進行模型修正.同時模擬分析了金屬泡沫三維矩形通道內空氣流動的對流換熱情況,與實驗結果進行了對比驗證.研究表明,本文提出的胞孔有效熱導率修正模型對鋁泡沫金屬有一定的適用性;相同孔隙率條件下,泡沫金屬通道內強制對流的對流換熱系數隨孔密度的增加(即孔徑的減小)而增大,但付出的代價是阻力也隨之增大;相對而言,低孔密度的泡沫金屬具有較好的對流換熱綜合性能.Abstract: A simplified geometrical model of high porosity open-cell metal foams was constructed. A related expression of effective thermal conductivity of the metal foams was derived on the base of the analogy between thermal and electrical resistance at the scale of unit pore. The correlation was further modified by existing experimental data. In addition, convective heat transfer was numerically simulated for air flow in a metal-foam filled three-dimensional rectangular duct. The simulation results were analyzed and compared with experimental data. It is shown that the calibrated effective thermal conductivity model is applicable for aluminium metal foams. Under the condition of the same porosity, the convective heat transfer of forced flow in the duct is enhanced by using higher porosity (i. e. smaller pore size) metal foams, but at the expense of a higher pressure drop. To some extent, metal foams with a lower pore density have a better overall performance on convective heat transfer.
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Key words:
- metal foam /
- effective thermal conductivity /
- convection heat transfer /
- numerical simulation /
- porosity
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