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相变材料微胶囊悬浮液在矩形小通道内层流流动传热的实验

饶宇 Frank Dammel Peter Stephan 林贵平

饶宇, Frank Dammel, Peter Stephan, 林贵平. 相变材料微胶囊悬浮液在矩形小通道内层流流动传热的实验[J]. 航空动力学报, 2006, 21(6): 1012-1020.
引用本文: 饶宇, Frank Dammel, Peter Stephan, 林贵平. 相变材料微胶囊悬浮液在矩形小通道内层流流动传热的实验[J]. 航空动力学报, 2006, 21(6): 1012-1020.
RAO Yu, Frank Dammel, Peter Stephan, LIN Gui-ping. Experimental study of laminar flow heat transfer with microencapsulated phase change material suspensions in rectangular mini-channels[J]. Journal of Aerospace Power, 2006, 21(6): 1012-1020.
Citation: RAO Yu, Frank Dammel, Peter Stephan, LIN Gui-ping. Experimental study of laminar flow heat transfer with microencapsulated phase change material suspensions in rectangular mini-channels[J]. Journal of Aerospace Power, 2006, 21(6): 1012-1020.

相变材料微胶囊悬浮液在矩形小通道内层流流动传热的实验

Experimental study of laminar flow heat transfer with microencapsulated phase change material suspensions in rectangular mini-channels

  • 摘要: 本文进行了对比性的实验,以研究相变材料微胶囊(MEPCM)-水悬浮液在水力直径为2.71 mm的矩形小通道内的层流流动传热性能。实验中用的MEPCM颗粒的平均粒径为4.97μm,与蒸馏水混合制备成质量浓度范围为020%的MEPCM-水悬浮液。对比性的实验是指,在相同的悬浮液质量流量和热力条件下,使用不同浓度的MEPCM悬浮液进行传热实验。实验发现,MEPCM悬浮液的冷却性能严重依赖于悬浮液的质量流量和悬浮液的质量浓度。质量浓度为5%的悬浮液在在整个质量流量范围内总是表现出比水好的冷却性能,它对应的是更低的壁面温度以及更好的传热系数。而对于更高质量浓度的悬浮液,在低质量流量的情况下,它们具有很好的冷却性能;而在高质量流量的情况下,它们表现出的冷却性能比水更差,它们对应更高的壁面温度以及更低的Nusselt数。

     

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出版历程
  • 收稿日期:  2005-11-21
  • 修回日期:  2006-03-25
  • 刊出日期:  2006-12-28

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