• Title/Summary/Keyword: Capillary Pumped Loop

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Performance Test and Development of the Composite Heat Pipe with Rotating and Static Heat Pipe (회전.비회전 복합 히트파이프 개발과 성능 시험)

  • Lee, Y.S.;Jang, Y.S.
    • Solar Energy
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    • v.18 no.4
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    • pp.101-110
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    • 1998
  • The purpose of this research is to study the charateristics and manufacture of a composite heat pipe system with rotational and static pipe. A composite heat pipe system were tested to obtain the relationship between the expansion injector and auxiliary expansion for the motion of the working fluid by the experimental results. In addition the heat transport characteristics were found based on wall temperature of rotor, expansion injector, storage tank and vapor temperature. Water is used as working fluid of heat pipes. As the results of experiments, the composite heat pipe was operated for long times, 10 hour above with various rotational speed in performance. There were a few unexpected data by the capillary pumped loop at small working fluid, but as a whole the testing was successful.

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A fundamental Study on the Manufacturing and Operating Characteristics of a Small Scale CPL Heat Pipe (소형 CPL 히트파이프의 제작 및 작동 특성에 관한 기초연구)

  • 안영길;유성열;임광빈;김철주
    • Journal of Energy Engineering
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    • v.12 no.1
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    • pp.17-22
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    • 2003
  • The present study was conducted to obtain the fundamental knowledge on the manufacturing and operating characteristics of a small scale CPL (Capillary Pumped Loop) heat pipe. CPL heat pipes are able to transfer heat effectively at any orientation in a gravitational field over long distances. An experimental model with an evaporator of a circular plate shape was designed and manufactured and its operating performances were tested. A Bronze powder sintered metal plate of 3 mm thick and $\Psi$ 50 mm was used as wick and ethanol was used as working fluid. An experimental apparatus was set up to ascertain the operating conditions oi CPL at different heat load and an surrounding temperature at the condenser was maintained about 13$^{\circ}C$.