DocumentCode :
3130854
Title :
Mathematical model of heat and mass transfer in a wick structure of a loop heat pipe
Author :
Lin, Fang-Chou ; Yeh, Chien-Chih ; Wu, Shen-Chun ; Chen, Yau-Ming
Author_Institution :
Dept. of Mech. Eng., Nat. Taiwan Univ., Taipei, Taiwan
fYear :
2009
fDate :
21-23 Oct. 2009
Firstpage :
356
Lastpage :
359
Abstract :
A mathematical steady-state model of a loop heat pipe (LHP) system was developed in this study. The model was based on the energy conservation and the phase-change heat transfer in porous media. The evaporator temperature was predicted including using a monoporous wick structure and using a biporous wick structure, which has two characteristic pore sizes. Experiments were also executed in this study. The model indicated that the monoporous wick with narrow pore size distribution accumulated gradually the vapor blanket; it brought the higher thermal resistance at increasing heat load. The biporous wick with the lager pores providing the passages for vapor and thus improved the heat transfer capacity of a LHP´s evaporator. The calculation results showed that, at 10°C of sink temperature, 25°C of ambient temperature, and 350W of heat load, the evaporator temperature of monoporous wick was 88°C and the thermal resistance of the vapor blanket was 0.13°C/W, 60% of the total thermal resistance of the system (0.22°C/W). At the same modeling condition, the evaporator temperature of biporous wick was 50°C and the thermal resistance of the vapor blanket was 0.003°C/W, about 3% of the total thermal resistance (0.1°C/W). It indicated the biporous wick effectively enhanced the heat transfer performance of a LHP. To summarize, the development of this model could be a useful tool for predicting the performance of a LHP using the monoporous and biporous wicks.
Keywords :
heat pipes; heat sinks; heat transfer; mass transfer; mathematical analysis; biporous wick structure; energy conservation; evaporator temperature; heat load; heat transfer capacity; loop heat pipe; mass transfer; mathematical steady-state model; monoporous wick structure; phase-change heat transfer; pore size distribution; porous media; power 350 W; sink temperature; temperature 10 C; temperature 25 C; temperature 50 C; temperature 88 C; thermal resistance; vapor blanket; Energy conservation; Heat sinks; Heat transfer; Mathematical model; Predictive models; Resistance heating; Steady-state; Temperature; Thermal loading; Thermal resistance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microsystems, Packaging, Assembly and Circuits Technology Conference, 2009. IMPACT 2009. 4th International
Conference_Location :
Taipei
Print_ISBN :
978-1-4244-4341-3
Electronic_ISBN :
978-1-4244-4342-0
Type :
conf
DOI :
10.1109/IMPACT.2009.5382190
Filename :
5382190
Link To Document :
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