• Title/Summary/Keyword: Screen wick

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A Study on the Heat Transfer Performance of a Heat Spreader (히트 스프레더의 열전달 성능에 관한 연구)

  • Kim, Hyun-Tae;Lee, Yong-Duck;Oh, Min-Jung;Jang, Sung-Wook
    • Proceedings of the KSME Conference
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    • 2004.11a
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    • pp.1258-1263
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    • 2004
  • The present study proposes a new structure for a heat spreader which could embody a thin thickness, any shapes and high heat flux per unit area. It is on the structure for the formation of vapor passages and the support of the case of the heat spreader. A screen mesh is used as the one. To verify the validity of the one, the heat spreader of 1.4mm and 1.6mm thickness was made with 14 mesh and 100 mesh number. In this paper, The performance test of heat spreader conducted in order to compare with the heat transfer performance of conventional heat pipe. As the results, The heat spreader has excellent cooling and heat transfer performance.

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An Experimental Study on the Heat Transfer Characteristics of High-Temperature Cylindrical Heat Pipes (고온 원관형 히트파이프의 열전달 특성에 관한 실험 연구)

  • 박수용;부준홍
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.16 no.1
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    • pp.70-76
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    • 2004
  • High-temperature cylindrical sodium/stainless-steel heat pipes were manufactured and tested for transient as well as steady states. Total length of the heat pipe was 1 m and the diameter was 25.4 mm. Screen meshes of 3 different sizes were used to estimate the effect of mesh size on the thermal performance of the heat pipe. The minimum thermal resistance achieved was as low as 0.02$^{\circ}C$/W for the maximum thormal load of 2 ㎾. The average heat transfer coefficient in the evaporator was about 2,000 ㎾/$m^2$K and those in the condenser region were up to 5 times higher.

Influence of NCG Charging Mass on the Heat Transport Capacity of Variable Conductance Heat Pipe (불응축가스량이 가변전열 히트파이프의 열수송 특성에 미치는 영향)

  • Suh Jeong-Se;Park Young-Sik;Chung Kyung-Taek
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.18 no.4
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    • pp.320-327
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    • 2006
  • Numerical analysis and experimental study are performed to investigate the effect of heat load and operating temperature on the thermal performance of several variable conductance heat pipe (VCHP) with screen meshed wick. The heat pipe is designed in 200 screen meshes, 500 mm length and 12.7 mm outer diameter tube of copper, water (4.8 g) is used as working fluid and nitrogen as non-condensible gas (NCG). Heat pipe used in this study has evaporator, condenser and adiabatic section, respectively. Analysis values and experimental data of wall temperature distribution along axial length are presented for heat transport capacity, condenser cooling water temperature change, degrees of an inclination angle and operating temperature. These analysis and experiment give the follow findings: For the same charging mass of working fluid, the operating temperature of heat pipe becomes to be high with the increasing of charging mass of NCG. When the heat flux at the evaporator section increases, the vapor pressure in the pipe rises and consequently compresses the NCG to the condenser end part and increases the active length of the condenser. From previous process, it is found out we can control the operating temperature effectively and also the analysis and experimental results are relatively coincided well.

Development of Heat-treatment Furnace with Maximum Uniform Zone using Gas-phase Condensing Heat Exchange (기상응축 열교환을 이용한 고정밀 등온 가열로 개발)

  • Hong, Hyun-Seon;Kong, Man-Seek;Kang, Hwan-Kook
    • Journal of the Korean Society for Heat Treatment
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    • v.22 no.3
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    • pp.162-168
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    • 2009
  • A horizontal tube furnace with a wide uniform-temperature zone was developed using isothermal characteristics of a heat pipe. The heat pipe heating system consists of a concentric annular shaped stainless-steel container, sodium as a working fluid and a screen mesh wick structure. The performance test of the heat pipe revealed that temperature changes along seven consecutive positions of the heat pipe outer wall were less than${\pm}0.1^{\circ}C$, thereby ensuring the high isothermal property. The isothermal property of the heat pipe-adapted tube fumace was investigated and compared to a conventional non-heat pipe type tube furnace. The temperature distribution measurement showed that the uniform temperature zone, in which temperature change is less than${\pm}$1$^{\circ}$C, of the heat pipe employed tube furnace system was about three times longer compared to the conventional tube furnace system.

Long-Term Life Test of A Stainless Steel-Sodium Heat Pipe (스테인리스 스틸-나트륨 히트파이프의 장기 수명 시험)

  • Park, S.Y.;Jung, E.G.;Boo, J.H.;Kang, H.K.;Yoo, J.H.;Park, S.H.
    • Proceedings of the KSME Conference
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    • 2004.11a
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    • pp.1058-1062
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    • 2004
  • High-temperature cylindrical stainless steel/sodium heat pipe was manufactured and tested under long-term operation. The container material was stainless steel 316L and the working fluid was sodium. The heat pipe was 25.4 mm in diameter and 1000 mm in length with a two-layer screen mesh wick. The evaporator part was 600 mm and the condenser part was 300 mm in length. Total measurement points on heat pipe were 15 points and 12 points were located in condenser part. The heat pipe was heated for 142 days(3400 hours) at $800^{\circ}C$. In the test period, the maximum temperature difference was increased from $18^{\circ}C$ o $28^{\circ}C$ and the maximum thermal resistance was as low as $0.015^{\circ}CW$.

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A Study on the Condenser Temperature Characteristics of a Disk Type Heat Pipe (원판형 히트파이프의 응축부 온도 특성에 관한 실험적 연구)

  • Boo, Joon-Hong;Chung, Won-Bok;Kim, Tae-Gyu
    • Proceedings of the KSME Conference
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    • 2000.04b
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    • pp.148-153
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    • 2000
  • An experimental study was conducted to investigate an isothermal characteristics of the condenser surface of disk type heat pipe using PF 5060 and FC 40 as working fluids. Desired temperature range at the condenser surface was $90^{\circ}C{\sim}130^{\circ}C$, which was cooled by natural convection. The operating temperature, the height of vapor space, the wall thickness of condenser, and the existence of a wick structure were considered as experimental factors. The temperature difference and the temperature fluctuation at the condenser surface were analysed to describe the performance of the heat pipe.

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The Experimental Study of Miniature Heat Pipes for Cooling Microprocessor Chips (전자칩 냉각을 위한 소형 히트 파이프에 대한 실험적 연구)

  • Lee, S.M.;Kim, H.B.;Yang, J.S.;Lee, K.B.
    • Proceedings of the KSME Conference
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    • 2000.04b
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    • pp.353-358
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    • 2000
  • This paper presents the experimental investigation about miniature heat pipe for notebook PC. The focus of analysis is the operating temperature not to exceed $65^{\circ}C$ maximum allowable CPU surface temperature. Copper is used to heat pipe material and brass is wick material, and working fluid is selected to water. This cooling system is heat spreader method using a aluminum plate, since this method is most commonly used. According to the present study, heat for 3mm heat pipe, 8W, and for 4mm heat pipe, 10W, is found to power dissipation limit respectively, Soon after this investigation, sufficient long term life test should be followed.

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Heat Pipe Heat Sink Development for Electronics Cooling (전자냉각용 히트파이프 히트싱크 개발)

  • 이기우;박기호;이석호;유성연
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.14 no.8
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    • pp.664-670
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    • 2002
  • A heat sink (HS) system using heat pipes for electronics systems was studied. The experimental results indicate that a cooling capacity of up to 150w at an overall temperature difference of $50^{\circ}C$ can be attainable. The heat sink design program also showed that a computer simulation can predict the most of the parameters involved. To do so, however, the interior temperature distribution had to be verified by experimental results. The current simulation results were close to the experimental results in acceptable range. The simulation study showed that the design program can be a good tool to predict the effects of various parameters involved in the optimum design of the heat sink.