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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Performance evaluation on the gradient design of pore parameters for metal foam and pin fin-metal foam hybrid structure
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Performance evaluation on the gradient design of pore parameters for metal foam and pin fin-metal foam hybrid structure

机译:金属泡沫孔隙参数梯度设计性能评价及销鳍金属泡沫混合结构

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This paper reported a study on the heat transfer in solidification of phase change materials (PCMs) embedded in metal foam. Heat transfer enhancement techniques are addressed in solidification including the insertion of pin fins and gradient design of pore parameters. Numerical models to describe the transient phase change heat transfer are established through the volume-averaged theory. One-temperature model is accounted for under the core assumption of local thermal equilibrium state. An experimental test rig is designed and established to verify the feasibility of the built numerical models by means of comparing solidification fronts and temperatures at PCM. The effects of gradients in parent materials, porosity and pore density for metal foam upon solidification behavior in metal foam and pin fin-metal foam hybrid structures are quantified. The contribution of local natural convection to the solidification behavior is justified and found this effect can be safely neglected for simulation on solidification in metal foam. Results demonstrate that the insertion of pin fins notably improve the solidification in metal foam regardless of gradient in pore parameters. The gradient in porosity rather than parent materials for the pin fin-metal foam hybrid structures can further improve the solidification rate. As for metal foam, both gradient in parent materials and graded porosity can significantly promote the solidification. The best heat transfer structure is recommend to be a pin fin-metal foam hybrid structure with gradient in metal foam porosity, outperforming other competing heat transfer techniques including pin fins or metal foam.
机译:本文报告了嵌入金属泡沫中相变材料(PCM)的凝固过程中的传热研究。在凝固中解决了传热增强技术,包括插入尖鳍和孔隙参数的梯度设计。通过体积平均理论建立了描述瞬态相变传热的数值模型。在局部热平衡状态的核心假设下占一次温度模型。设计并建立了一个实验测试钻机,以验证建筑数值模型的可行性,通过比较PCM的凝固前面和温度。量化了金属泡沫和销鳍金属泡沫杂交结构中均材料,孔隙率和金属泡沫孔密度的梯度,孔隙率和孔密度的影响。局部自然对流对凝固行为的贡献是合理的,发现可以安全地忽略这种效果以模拟金属泡沫中的凝固。结果表明,无论孔隙参数中的梯度如何,销翅片的插入明显改善金属泡沫中的凝固。孔隙率而不是用于销鳍金属泡沫杂交结构的母材的梯度可以进一步提高凝固率。至于金属泡沫,母体材料的梯度和分级孔隙率可以显着促进凝固。最佳的传热结构建议是具有金属泡沫孔隙率的梯度的销鳍金属泡沫结构,优于其他竞争传热技术,包括销翅片或金属泡沫。

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