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微/微小型热管研究的现状与展望 被引量:3
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作者 张程宾 施明恒 陈永平 《建筑热能通风空调》 2008年第2期18-23,共6页
微/微小型热管在航天器热控系统、微电子元器件散热等领域中有着广泛的应用。作者从微热管和微小型轴向槽道热管两方面综述了当前国内外关于微/微小型热管研究的现状.总结了当前该领域研究已取得的研究成果并展望了该领域的未来研究方向... 微/微小型热管在航天器热控系统、微电子元器件散热等领域中有着广泛的应用。作者从微热管和微小型轴向槽道热管两方面综述了当前国内外关于微/微小型热管研究的现状.总结了当前该领域研究已取得的研究成果并展望了该领域的未来研究方向,希望能引起国内同行的关注。 展开更多
关键词 微小型轴向槽道 微电子元器件 航天器热控系统
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Application of entransy to optimization design of parallel thermal network of thermal control system in spacecraft 被引量:19
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作者 CHENG XueTao XU XiangHua LIANG XinGang 《Science China(Technological Sciences)》 SCIE EI CAS 2011年第4期964-971,共8页
For distribution optimization of the flow rate of cold fluid and heat transfer area in the parallel thermal network of the thermal control system in spacecraft,a physical and mathematical model is set up,analyzed and ... For distribution optimization of the flow rate of cold fluid and heat transfer area in the parallel thermal network of the thermal control system in spacecraft,a physical and mathematical model is set up,analyzed and discussed with the entransy theory.It is found that the optimization objective of this problem and the optimization direction of the extremum entransy dissipation principle are consistent in theory.For a two-branch thermal network system,the distributions of the flow rate of the cold fluid and the heat transfer area are optimized by calculating the extremum entransy dissipation with the Newton method.The influential factors of the optimized distributions are also analyzed and discussed.The results show that the main influence factors are the heat transfer rate of the branches and the total heat transfer area.The total flow rate of the cold fluid has a threshold,beyond which further increasing its value brings very little influence on the optimization results.Moreover,the difference between the extremum entransy dissipation principle and the minimum entropy generation principle is also discussed when they are used to analyze the problem in this paper,and the extremum entransy dissipation principle is found to be more suitable.In addition,the Newton method is mathematically efficient to solve the problem,which could accomplish the optimized distribution in a very short time for a ten-branch thermal network system. 展开更多
关键词 thermal control system parallel thermal network optimization design extremum entransy dissipation principle
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