• Title/Summary/Keyword: turbulent energy

검색결과 768건 처리시간 0.028초

A 6 m cube in an atmospheric boundary layer flow -Part 2. Computational solutions

  • Richards, P.J.;Quinn, A.D.;Parker, S.
    • Wind and Structures
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    • 제5권2_3_4호
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    • pp.177-192
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    • 2002
  • Computation solutions for the flow around a cube, which were generated as part of the Computational Wind Engineering 2000 Conference Competition, are compared with full-scale measurements. The three solutions shown all use the RANS approach to predict mean flow fields. The major differences appear to be related to the use of the standard $k-{\varepsilon}$, the MMK $k-{\varepsilon}$ and the RNG $k-{\varepsilon}$ turbulence models. The inlet conditions chosen by the three modellers illustrate one of the dilemmas faced in computational wind engineering. While all modeller matched the inlet velocity profile to the full-scale profile, only one of the modellers chose to match the full-scale turbulence data. This approach led to a boundary layer that was not in equilibrium. The approach taken by the other modeller was to specify lower inlet turbulent kinetic energy level, which are more consistent with the turbulence models chosen and lead to a homogeneous boundary layer. For the $0^{\circ}$ case, wind normal to one face of the cube, it is shown that the RNG solution is closest to the full-scale data. This result appears to be associated with the RNG solution showing the correct flow separation and reattachment on the roof. The other solutions show either excessive separation (MMK) or no separation at all (K-E). For the $45^{\circ}$ case the three solutions are fairly similar. None of them correctly predicting the high suctions along the windward edges of the roof. In general the velocity components are more accurately predicted than the pressures. However in all cases the turbulence levels are poorly matched, with all of the solutions failing to match the high turbulence levels measured around the edges of separated flows. Although all of the computational solutions have deficiencies, the variability of results is shown to be similar to that which has been obtained with a similar comparative wind tunnel study. This suggests that the computational solutions are only slightly less reliable than the wind tunnel.

이어도해양과학기지에서의 에디 공분산 방법을 이용한 플럭스 관측 (Tower-based Flux Measurement Using the Eddy Covariance Method at Ieodo Ocean Research Station)

  • 이희춘;이방용;김준;심재설
    • Ocean and Polar Research
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    • 제26권2호
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    • pp.145-154
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    • 2004
  • Surface energy and $CO_2$ fluxes have been measured over an ocean at Ieodo Ocean Research Station of KORDI since May 2003. Eddy covariance technique, which is a direct flux measurement, is used to quantitatively understand the interaction between the ocean surface and the atmospheric boundary layer. Although fluxes were continuously measured during the period from May 2003 to February 2004, the quality control of these data yielded <20% of data retrieval. The atmospheric stability did not show any distinct dirunal patterns and remained near-neutral to stable from May to June but mostly unstable during fall and winter in 2003. Sensible heat flux showed a good correlation with the difference between the sea water temperature and the air temperature. The maximum fluxes of sensible heat and latent heat were $120Wm^{-2}$ and $350Wm^{-2}$ respectively, with an averaged Bowen ratio of 0.2. The ocean around the tower absorbed $CO_2$ from the atmosphere and the uptake rates showed seasonal variations. Based our preliminary results, the daytime $CO_2$ flux was steady with an average of $-0.1 mgCO_2m^{-2}s^{-1}$ in summer and increased in winter. The nighttime $CO_2$ uptake was greater and fluctuating, reaching up to $-0.1 mgCO_2m^{-2}s^{-1}$ but these data require further examination due to weak turbulent mixing at nighttime. The magnitude of $CO_2$ flux was positively correlated with the half hourly changes in horizontal mean wind speed. Due to the paucity of quality data, further data collection is needed for more detailed analyses and interpretation.

초음속 2차원 2단 혼합층에서 중간층의 역할 (A Study on the Effect of Mid Layer on Supersonic 2D Double Shear Layer)

  • 김동민;백승욱
    • 한국추진공학회지
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    • 제19권1호
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    • pp.9-17
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    • 2015
  • 기본 유동 형상은 상대적으로 얇은 중간층이 연료와 공기 사이에 끼어있는 평행 2단 혼합층으로 구성되어 있다. 본 연구는 중간층의 두께 변화에 따른 연소 향상을 수치해석을 통해 조사하였다. 이 경우에, 난류 혼합층에서 열 방출에 의한 효과가 중요하다. 수치해석을 수행하기 위해 완전 보존적인 비정상 2차 시간 정확도의 하부 반복 기법과 2차 총 변화 억제 기법을 k-${\omega}$ 전단응력이동 모델이 결합된 유한체적법과 함께 사용하였다. 다음과 같이 3개의 경우에 대해 해석을 수행하였다. 연료와 공기로 구성된 단일 혼합층, 연료와 공기 사이에 불활성 기체층이 끼어있는 2단 혼합층, 그리고 연료와 공기 사이에 차가운 연료층이 끼어있는 2단 혼합층. 수치해석은 중간 기체층이 1, 2, 4 mm 인 경우에 대하여 수행되었다. 기체층의 총 두께는 4 cm이다. 불활성기체층이 2, 4 mm인 경우와 저온의 연료층이 4 mm인 경우에 단일 혼합층의 경우보다 연소영역이 확대된다.

캠퍼스 개발계획에 대한 고찰 (Contemplation of the Campus Planning)

  • 이자원
    • 한국경제지리학회지
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    • 제11권1호
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    • pp.148-163
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    • 2008
  • 수 세기에 걸쳐 대학이 성장함에 따라 이는 주변의 커뮤니티와 더욱 밀접한 관련을 지으며 발전하거나 변화하게 된다. 초기의 작은 도시는 19세기를 통해 산업화를 겪고 중심지로 발전하게 되며, 대부분의 도시들은 대학을 중심으로 산업과 연구의 기조를 형성하고 이는 문화적으로 다양한 인구의 밀집지를 이루는데 한 근간이 되어왔다. 대학을 중심으로 구성되어 있는 커뮤니티는 그 자체가 하나의 작은 도시구조의 모습을 띄며, 대학과 인근 지역은 협조, 혹은 마찰을 공유하며 성장하고 변화한다. 많은 미국의 대학들이 대학의 성장과 함께 필요한 건물과 시설을 확장하고 개발하면서, 이로 인해 빚어지는 교통량의 증대와 기존 오픈스페이스의 손실 등 성장관리에 귀추를 두고 기존 지역과의 융화를 꾀하며 발전을 추구하고 있다. 하버드 대학의 북쪽 캠퍼스 개발의 사례를 통해 지역개발의 한 단편으로서 캠퍼스 개발계획은 어떠한 의미가 있는지 살펴보고자 한다.

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CFD 모델을 이용한 건물군 주변의 흐름 특성 연구 (A Study on the Characteristics of Flows around Building Groups Using a CFD Model)

  • 이한경;김재진;이영곤
    • 대기
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    • 제25권3호
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    • pp.501-510
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    • 2015
  • In this study, the characteristics of flows around building groups are investigated using a computational fluid dynamics (CFD) model. For this, building groups with different volumetric ratios in a fixed area are considered. As the volumetric ratio of the building group increases, the region affected by the building group is widened. However, the wind-speed reduced area rather decreases with the volumetric ratio near the ground bottom (z ${\lesssim}$ 0.7H, here, H is the height of the building group) and, above 0.7H, it increases. As the volumetric ratio decreases (that is, space between buildings was widened), the size of recirculation region decreases but flow recovery is delayed, resulting in the wider wind-speed reduced area. The increase in the volumetric ratio results in larger drag force on the flow above the roof level, consequently reducing wind speed above the roof level. However, above z ${\gtrsim}$ 1.7H, wind speed increases with the volumetric ratio for satisfying mass conservation, resultantly increasing turbulent kinetic energy there. Inside the building groups, wind speed decreased with the volumetric ratio and averaged wind speed is parameterized in terms of the volumetric ratio and background flow speed. The parameterization method is applied to producing averaged wind speed for 80 urban areas in 7 cities in Korea, showing relatively good performance.

POD(Proper Orthogonal Decomposition) 방법을 이용한 불안정한 프로펠러 후류 해석 (Analysis of the Unstable Propeller Wake Using POD Method)

  • 백부근;김경열;김기섭;이정엽;이상준
    • 대한조선학회논문집
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    • 제47권1호
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    • pp.20-29
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    • 2010
  • The complicated flow characteristics of upper propeller wake influenced by hull wake are investigated in detail in the present study. A two-frame PIV (particle image velocimetry) technique was employed to visualize the upper propeller wake region. As the upper hull wake affects strongly propeller inflow, upper propeller wake shows much unstable vortical behavior, especially in the tip vortices. Velocity field measurements were conducted in a cavitation tunnel with a simulated hull wake. Generally, the hull wake generated by the hull of a marine ship may cause different loading distributions on the propeller blade in both upper and lower propeller planes. The unstable upper propeller wake caused by the ship's hull is expressed in terms of turbulent kinetic energy (TKE) and is identified by using the proper orthogonal decomposition (POD) method to characterize the coherent flow structure in it. Instabilities appeared in the eigen functions higher than the second one, giving unsteadiness to the downstream flow characteristics. The first eigen mode would be useful to find out the tip vortex positions immersed in the unstable downstream region.

개구부가 있는 밀폐공간내 화재의 복합열전달 및 연소가스 분석에 관한 연구 (A Study on the Combined Heat Transfer and Analysis Fire Induced Combustion Gas in a partially Open Enclosure)

  • 박찬국;추병길;김철
    • 한국화재소방학회논문지
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    • 제11권1호
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    • pp.21-35
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    • 1997
  • The natural convection and combined heat transfer induced by fire in a rectangular enclosure is numerically studied. The model for this numerical analysis is partially opened right wall. The solution procedure includes the standard k-$\varepsilon$ model for turbulent flow and the discrete ordinates method (DOM) is used for the calculation of radiative heat transfer equation. In numerical study, SIMPLE algorithm is applied for fluid flow analysis, and the investigations of combustion gas induced by fire is performed by FAST model of HAZARD I program. In this study, numerical simulation on the combined naturnal convection and radiation is carried out in a partial enclosure filled with absorbed-emitted gray media, but is not considered scattering problem. The streamlines, isothermal lines, average radiation intensity and kinetic energy are compared the results of pure convection with those of the combined convection-radiation, the combined heat transfer. Comparing the results of pure convection with those of the combined convection-radiation, the combined heat transfer analysis shows the stronger circulation than those of the pure convection. Three different locations of heat source are considered to observe the effect of heat source location on the heat transfer phenomena. As the results, the circulation and the heat transfer in the left region from heating block are much more influenced than those in the right region. It is also founded that the radiation effect cannot be neglected in analyzing the building in fire. And as the results of combustion gas analysis from FAST model, it is found that O2 concentration is decreased according to time. While CO and CO2 concentration are rapidly increased in the beginning(about 100sec), but slowly decreased from that time on.

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2유체 분무노즐의 분열특성(I)-액주분열 및 내부유동- (Breakup Characteristics in Plain Jet Air Blast Atomizer(I)-Jet Breakup and Internal Flow-)

  • 김혁주;이충원
    • 대한기계학회논문집B
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    • 제21권8호
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    • pp.1009-1023
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    • 1997
  • The breakup length of a liquid jet with flowrate, formed by releasing through a nozzle of circular cross-section into the atmosphere, was experimented and studied for 3 liquid nozzles of varying diameters. The experimental result was analyzed using the existing theoretical equation for predicting the breakup length. It was found that the breakup length of liquid jet depends on the velocity, and the breakup length increases with increasing of the liquid nozzle diameter. Also, the variation range of the breakup length for the same flowrate of liquid increased rapidly as velocity was increased for laminar flow, but in the turbulent flow region, it leveled off in the range of approximately 0.55-0.7 of the mean breakup length. Furthermore, when the longest smooth liquid jet was applied to the co-axial flow air blast atomizer, the effect of air flow on the flow pattern and breakup length was studied for 6 glass nozzles of different lengths and diameters. It was found that depending on the diameter of the mixing tube and liquid jet, it was possible to observe a wide range of flow patterns, such as liquid jet through flow, partial annular flow and annular flow. The liquid jet breakup length was more sensitive to the change in the length rather than the diameter of the mixing tube. As the length of the mixing tube shortens, the breakup length also shortens rapidly.

막냉각 홀의 측면 방향 분사각, 확장각 및 주기가 막냉각 효율에 미치는 영향 (Effects of Compound Angle, Diffuser Angle, and Hole Pitch on Film-cooling Effectiveness)

  • 김선민;이기돈;김광용
    • 대한기계학회논문집B
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    • 제35권9호
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    • pp.903-913
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    • 2011
  • 본 연구에서는 가스터빈 블레이드의 냉각을 위해 사용되는 막냉각 홀을 대상으로 다양한 형상변수들이 막냉각 효율에 미치는 영향을 평가하기 위한 수치적 연구를 수행하였다. 삼차원 압축성 Reynolds-averaged Navier-Stokes 해석을 수행하였으며, 난류모델로는 shear stress transport 모델이 사용되었다. 해석을 통해 홀의 형상, 측면 방향 분사각, 홀의 주기 및 분사율이 막냉각 효율에 미치는 영향이 평가되었다. 해석결과, 원통형홀의 경우 측면 방향 분사각이 존재할 때 월등히 향상된 막냉각 효율을 보여주었으며, 홴형상 홀의 경우 측면 방향 분사각이 $20^{\circ}{\sim}30^{\circ}$일 때 가장 높은 막냉각 효율을 보여주었다. 또한 홀의 주기의 변화에 따른 성능평가 결과 높은 분사율일 때가 낮은 분사율의 경우보다 홀의 주기에 의존하는 경향을 보였다.

실제기체 상태방정식을 적용한 열압축기 내부유동에 대한 수치해석 (Numerical Analysis for the Internal Flow of Thermal Vapor Compressor with real gas equation of state)

  • 강위관;최두열;신지영;김무근
    • Journal of Advanced Marine Engineering and Technology
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    • 제35권2호
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    • pp.216-223
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    • 2011
  • 열압축기는 고압 증기를 이용하여 저압 증기를 중간압으로 이송하는 일종의 이젝터이다. 이젝터에 대한 기존의 수치해석 연구는 대부분 작동유체를 이상기체로 취급하고 있으나 상변화가 발생하는 경우 이상기체 거동에서 크게 벗어날 수 있다. 따라서 본 연구에서는 이상기체 상태방정식 대신 Redlich-Kwong 방정식을 적용하여 열압축기 내부 유동을 수치 해석하였고, realizable k-${\epsilon}$ 모델과 SST k-${\omega}$ 모델을 비교한 결과 SST k-${\omega}$ 모델이 shock diamond 패턴과 박리 및 난류경계층을 잘 예측하는 것을 확인할 수 있었다. 또한 실제기체 상태방정식을 사용한 경우가 이상기체 상태방정식을 사용한 경우에 비해 상대적으로 디퓨저 입구 부분과 디퓨저 목부분에서 에너지 손실이 많은 것을 알 수 있었으며, 디퓨저 출구부분에서 shock train에 의한 압력상승은 상대적으로 적으나 pseudo shock에 의한 압력상승은동일한 것으로 확인되었다.