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翅片-泡沫铜复合结构的导热增强作用

迟蓬涛 高红霞 余建祖 谢永奇

迟蓬涛, 高红霞, 余建祖, 谢永奇. 翅片-泡沫铜复合结构的导热增强作用[J]. 航空动力学报, 2012, 27(4): 854-860.
引用本文: 迟蓬涛, 高红霞, 余建祖, 谢永奇. 翅片-泡沫铜复合结构的导热增强作用[J]. 航空动力学报, 2012, 27(4): 854-860.
CHI Peng-tao, GAO Hong-xia, YU Jian-zu, XIE Yong-qi. Heat transfer enhancement of fin-copper foam composite structure[J]. Journal of Aerospace Power, 2012, 27(4): 854-860.
Citation: CHI Peng-tao, GAO Hong-xia, YU Jian-zu, XIE Yong-qi. Heat transfer enhancement of fin-copper foam composite structure[J]. Journal of Aerospace Power, 2012, 27(4): 854-860.

翅片-泡沫铜复合结构的导热增强作用

基金项目: 航空科学基金(2004ZE51048); 凡舟青年科研基金(20070505)

Heat transfer enhancement of fin-copper foam composite structure

  • 摘要: 由于翅片能够极大提高沿翅片伸展方向的导热能力,因此为满足一些航空大功率元件的散热要求,提出采用翅片-泡沫铜复合结构作为导热增强介质的概念.制作了翅片厚度分别为0.5,0.8mm和1.0mm的翅片-泡沫铜/石蜡实验件.通过瞬态和稳态的方法对实验件的热特性进行了测试,结果表明添加1.0mm翅片后复合材料的等效导热系数达到11.4W/(m·K),分别为泡沫铜/石蜡和纯石蜡的3.7倍和42.2倍;在相同热流密度下,采用翅片的装置热源与散热面的最大温差相对于未采用翅片的装置降低了73.2%~90.0%.实验证明翅片能够显著提高泡沫铜/石蜡的等效导热系数和动态热响应速度.根据实验结果提出了适用于翅片-泡沫铜/石蜡相变过程的无量纲数关联式.

     

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出版历程
  • 收稿日期:  2011-12-20
  • 修回日期:  2012-02-21
  • 刊出日期:  2012-04-28

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