• Title/Summary/Keyword: 열적 입구길이

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Study on Heat Transfer Characteristics for Single-phase Flow in Rectangular Microchannels (사각 마이크로 채널의 단상 유동 열전달 특성 연구)

  • Mun, Ji-Hyun;Kim, Seon-Chang
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.35 no.9
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    • pp.891-896
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    • 2011
  • In this study, experiments were carried out to investigate the convective heat transfer characteristics of rectangular microchannels. The sample used in the experiments contained 20 rectangular microchannels in parallel. The channels had a hydraulic diameter of 700 ${\mu}m$. Distilled water was used as the working fluid. In the experiments, the Reynolds number ranged from 400 to 800, heat flux ranged from 35 to 85 kW/$m^2$, and the inlet fluid temperature was $20^{\circ}C$. As a result, the convective heat transfer coefficient increased upon increasing the Reynolds number and ranged from 4.6 to 6.4 kW/$m^2/^{\circ}C$ in the thermally fully developed region. Moreover, the higher the Reynolds number, the longer the thermal entry length in the rectangular microchannels. However, it was observed that a variable heat flux did not affect the thermal entry length. In conclusion, a correlation was proposed to indicate the heat transfer characteristics in a thermally fully developed region.

An experimental study on the thermal entrance lengths for viscoelastic polymer solutions in turbulent tube flow (점탄성 특성을 가진 폴리머용액의 난류유동 열적입구길이에 관한 실험적 연구)

  • 유상신;황태성;엄정섭
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.12 no.5
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    • pp.1189-1196
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    • 1988
  • Thermal entrance lengths of turbulent tube flow for viscoelastic polymer solutions are investigated experimentally in the recirculating flow system with tubes of inside diameters 8.5mm(L/D=710) and 10.3mm(L/D=1158), respectively. In the present system, the hydrodynamic and thermal boundary layers develop simultaneously from the beginning of the test section. To provide the boundary condition of constant heat flux at the wall, the test tubes are heated directly by electricity. The polymer solution used in the current study is 1000 wppm aqueous solution of polyacrylamide(Separan AP-273). The apparent viscosity of the polymer solutions circulating in the flow system are measured by the capillary tube viscometer at regular time intervals. Thermal entrance lengths vary due to the rate of degradation. The entrance lengths of degraded polymer solutions are about 500~600 times the diameter. However, the entrance lengths of fresh polymer solutions are greater than the lengths of the test tubes used in this study suggesting that thermal entrance lengths for viscoelastic polymer solutions are greater than 1100 tube times the diameters. Friction factor is almost insensitive to the degradation, but the heat transfer $j_{H}$-factor is affected seriously by degradation. Based on the present experimental data of fresh solutions a correlation for the heat transfer $j_{H}$-factor is presented.ted.

The heat transfer characteristics of viscoelastic non-newtonian fluids in the entrance region of circular tube flows (원형관속을 유동하는 점탄성 유체의 입구 영역 열전달 특성에 관한 연구)

  • 엄정섭;황태성;유상신
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.13 no.5
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    • pp.1032-1043
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    • 1989
  • The heat transfer characteristics of the drag reducing polymer solutions are investigated experimentally in the thermal entrance region of circular tube flows. Fluids used in experiments are the aqueous solutions of high molecular polymer, polyacrylamide Separan AP-273 and the range of polymer concentrations is from 20 to 1000 wppm. Two stainless steel tubes with inside diameter 8.5mm(L/D=712) and 10.3mm(L/D=1160) are used for the heat transfer flow loops. The flow loop is set up to measure friction factors and heat transfer coefficients of test sections in two different modes; the recirculating flow system and once-through flow system. The test tubes are heated directly by electricity to apply the constant heat flux boundary conditions to the wall. Three different types of adaptors are used to observe the effects of the upstream flow conditions of the heat transfer test sections. The viscosity and characteristic relaxation time of the test fluids circulating in the flow system are measured by the capillary tube viscometer and falling ball viscometer at regular time intervals. The installed adaptors exhibit slight effect on the entrance heat transfer of Newtonian fluid. However, no noticeable effects are observed for the entrance heat transfer of the drag reducing fluids. The order of magnitude of the thermal entrance lengths of the drag reducing fluids which follow the minimum friction asymptote is much longer than that of Newtonian fluids in turbulent flows. A new dimensionless parameter, the viscoelastic Graetz number, is defined and all the experimental data are recasted in terms of the viscoelastic Graetz number. The local Nusselt number of the viscoelastic fluids is represented as a function of flow behavior index n and the viscoelastic Graetz number. As degradation continues the viscosity and the characteristic relaxation time of the testing fluids decrease. Weissenberg number defined by the relaxation time and D/V appears to be a proper dimensionless parameter in describing degradation effects on heat transfer of the viscoelastic fluids.

기체 흐름 기술을 이용한 원거리 대기압 질량분석 이미징 기술

  • Kim, Jae-Yeong;Seo, Eun-Seok;Lee, Seon-Yeong;Sin, Mi-Hyang;Jeong, Gang-Won;Mun, Dae-Won
    • Proceedings of the Korean Vacuum Society Conference
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    • 2016.02a
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    • pp.381.1-381.1
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    • 2016
  • 분석 방법의 간편함과 용이함의 장점은 물론, 시료 전처리 과정이 적어 시료물질의 임의 파괴나 훼손을 방지한다는 이유에서 최근 10년 간 많은 연구가 이루어지고 있는 대기압 질량분석 기술은 기압차이가 없는 대기압 분위기에서 질량분석이 이루어지기 때문에 시료를 질량분석기 입구 바로 앞에 스테이지를 설치하고서 시료를 이온화하는 경우가 대부분이다. 이 때문에 균질하지 않은 시료의 관심 영역을 모니터링하면서 질량분석을 하기에는 어려움이 있으며, 공간 정보를 추가한 질량분석 이미징에 한계가 있었다. 이에 본 연구팀은 질량분석기 입구에 챔버와 보조 펌프를 장착하여 강제로 기체 흐름 일으켜 시료로부터 발생한 이온을 질량분석기 입구로 유도하여, 원거리에서 시료를 이온화해도 질량분석기 입구까지 이온을 성공적으로 전달시키는 방법을 제안한다. 이를 이용하면 분석하고자 하는 시료를 현미경 스테이지 위에 위치시켜 분석하고자하는 부분을 현미경으로 확인하면서 질량분석을 할 수 있으며, 나아가 대기압 질량 분석 이미징 기술을 구현할 수 있다. 대기압 탈착/이온화원은시료에 열적 손상이 없는 조건으로 시편의 이온화 및 탈착 과정이 이루어지게 하기 위해 저온 대기압 헬륨 플라즈마 젯과 펨토초 레이저를 결합하여 대기압 이온화원을 제작하였다. 이온 전달관은 1/4" (6.35 mm) 외경의 60 cm 길이의 스테인리스 스틸관을 사용하여 질량분석기에서 약 60 cm 떨어진 현미경 위의 시료의 질량분석이 가능하게 했다. 보조 펌프의 계기압과 저온 대기압 헬륨 플라즈마 젯의 헬륨 기체의 유속을 변화시키면서 시료인 PDMS (polydimethylsiloxane) 의 질량 스펙트럼 (m/z 270.314) 세기를 관찰하여 최적의 이온 전달 조건을 찾았다. 추가로 현미경 스테이지에 정밀 2-D 자동 스캐닝 스테이지를 장착하여 질량분석 정보에 공간 정보를 더할 수 있는 질량분석 이미징 기술 방법을 개발하여 생체 시편의 질량분석 이미징을 얻었다.

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An analytical study on the thermal performance of multi-tube CO2 water heater (다중관형 CO2 급탕열교환기의 열적성능에 대한 해석연구)

  • Chang, Keun Sun;Choi, Youn Sung;Kim, Young-Jae
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.17 no.8
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    • pp.23-30
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    • 2016
  • In this study, the heat transfer and pressure drop characteristics were evaluated for multi-tube $CO_2$ water heaters with lengths of 4.5 m and 7.5 m. The evaluation was done using the -NTU method, and the results were compared with experimental data. Water flows through the shell side of the water heater, while $CO_2$ flows through 8 inner tubes. The heater uses a counter-current design to maximize the heat transfer efficiency. The energy balance equation describing the flows of $CO_2$ and water for each node is set up using the section-by-section method. The calculated heat transfer rates agree well with the experimental data within ${\pm}5%$ error. The outlet water temperature decreased linearly with the increase of the water flow rate. The calculated heat transfer rates agreed well with the experimental data within ${\pm}3%$ error. The results show that the heat transfer rate increases almost linearly with the increase of water flow rate or $CO_2$ inlet temperature in both the 4.5-m and 7.5-m water heaters, whereas the water outlet temperature linearly decreases with the increase of the water flow rate. The comparison of the $CO_2$ pressure drop between the calculation and experiment results shows good agreement at the high $CO_2$ flow rate within 5 % error, but the value is about 20 % higher in the experimental pressure drop at the low $CO_2$ flow rate.