• 제목/요약/키워드: churn flow

검색결과 24건 처리시간 0.015초

이상 유동 비등 시 마이크로 채널에서의 열전달 특성과 유동양식 조사 (Heat transfer characteristic and flow pattern investigation in micro-channels during two-phase flow boiling)

  • 최용석;임태우
    • Journal of Advanced Marine Engineering and Technology
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    • 제39권7호
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    • pp.696-701
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    • 2015
  • 본 연구에서는 깊이 0.2 mm, 폭 0.45 mm, 길이 60mm 그리고 채널의 개수는 15개인 마이크로 채널에서 이상 유동비등에 관한 실험을 수행하였다. 작동유체로는 FC-72가 사용되었으며, 실험은 질량유속과 열유속 각각 $200-400kg/m^2s$, $5-40kW/m^2$ 범위와 증기 건도 0.1-0.9 범위에서 수행되었다. 열전달 계수는 낮은 열유속에서는 급격하게 감소하였으며, 일정 열유속 이상에서는 거의 일정하게 유지되었다. 측정된 열전달 계수로부터 기존의 방법을 이용하여 기포류, 슬러그류, 천류 그리고 파형/환상류의 유동양식으로 분류하였다. 또한 분류한 유동양식의 결과를 파형/환상류 영역으로의 천이 기준과 비교하였다. 하지만 기존의 천이 기준으로는 본 연구의 실험결과를 만족스럽게 예측하지 못하였다.

복합모드형 소형 MR감쇠장치 성능에 관한 실험적 연구 (An Experimental Study on the Performance of a Mixed Mode Type Small Scale MR Damper)

  • 이상현;민경원;이명규;박은천
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2005년도 학술발표회 논문집
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    • pp.461-468
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    • 2005
  • In this paper, mixed mode magneto-rheological (MR) damper, which is applicable for vibration control of a small scale multi-story structure, is devised. First, the schematic configurations of the shear, flow, and mixed mode MR dampers are described with design constraints and then the analytical models to predict the field-dependent damping forces are derived for each type. Second, an appropriate size of the mixed mode MR damper is manufactured and its field-dependent damping characteristics are evaluated in time domain. Finally, the performance of the manufactured MR damper which is semi-actively applied to a small scale building excited by earthquake load, is numerically evaluated.

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A Study on Gas-Liquid Contact in a Perforated Plate-Type $SO_2$ Absorber at Flooding Conditions

  • Han, Seung-Ho;Soowoo Kwon;Sangwon Jung;Jaehyuk Junk;Yang, Chang-Ryung;Carl Weilert
    • Journal of Korean Society for Atmospheric Environment
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    • 제15권E호
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    • pp.17-28
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    • 1999
  • Gas-liquid contact tests above a perforated-plate were conducted with air and water at flooding gas-flow conditions in order to study two-phase flow characteristics in a limestone-gypsum SO2 absorber. Gas layers were in the form of air pockets and confined to the limited areas around each duct pipe, while the remaining tary area were in the wet condition. The liquid above the tray was always in the flooded and even fluidized conditions at gas flows over the range studied, although vigorous bubbly or churn-turbulent two-phase regime was only observed in the immediate vicinity of the gas hole exit at low gas loads. The froth zone was extremely active to provide intimate contact between gas and liquid so that the necessary mass transfer operation can take place, which is the primary purpose of high-performance SO2 absorbers. Howefer, the absorber $\Delta$P was 250mmH2O for the initial water level at 150mm, which is an important issue to be resolved for economical operation of the SO2 absorber. It was seen in the liquid level-and gas flow-transient tests that changes in the absorber liquid inventory were much more pronounced for intimate gas-liquid contact than changes in the gas flow. Based on the 4- and 8-duct pipe test results, grouping the duct pipes near the center of the test tray seemed to promote better recirulation of liquid from gas-liquid contact zone back to the reaction tank so that the absorbed SO2 can be neutralized.

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Characteristics of Gas-liquid Mass Transfer and Interfacial Area in a Bubble Column

  • Lim, Dae Ho;Yoo, Dong Jun;Kang, Yong
    • Korean Chemical Engineering Research
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    • 제53권3호
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    • pp.315-320
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    • 2015
  • Characteristics of gas-liquid mass transfer and interfacial area were investigated in a bubble column of diameter and height of 0.102 m and 2.5 m, respectively. Effects of gas and liquid velocities on the volumetric gas-liquid mass transfer coefficient ($k_La$), interfacial area (a) and liquid side true mass transfer coefficient ($k_L$) were examined. The interfacial area and volumetric gas-liquid mass transfer coefficient were determined directly by adopting the simultaneous physical desorption of $O_2$ and chemical absorption of $CO_2$ in the column. The values of $k_La$ and a increased with increasing gas velocity but decreased with increasing liquid velocity in the bubble column which was operated in the churn turbulent flow regime. The value of $k_L$ increased with increasing gas velocity but did not change considerably with increasing liquid velocity. The liquid side mass transfer was found to be related closely to the liquid circulation as well as the effective contacting frequency between the bubbles and liquid phases.