• 제목/요약/키워드: CFD modeling

검색결과 379건 처리시간 0.023초

돌아가는 바퀴 및 이동지면 조건이 3차원 자동차 형상의 공력성능에 미치는 영향에 관한 연구 (Influence of Rotating Wheel and Moving Ground Condition to Aerodynamic Performance of 3-Dimensional Automobile Configuration)

  • 강승온;전상욱;박훈일;구요천;기정도;홍동희;김규홍;이동호
    • 한국자동차공학회논문집
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    • 제18권5호
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    • pp.100-107
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    • 2010
  • This paper gives new conceptual descriptions of drag reduction mechanism owing to rotating wheel and moving ground condition when dealing with automotive aerodynamics. Using Computational Fluid Dynamics (CFD), flow simulation of three dimensional automobile configuration made by Vehicle Modeling Function (VMF) is performed and the influence of wheel arch, wheels, rotating wheel & moving ground condition to the automotive aerodynamic performance is analyzed. Finally, it is shown that rotating wheel & moving ground condition decreases automotive aerodynamic drag owing to the reduction of the induced drag led by the decrease of COANDA flow intensity of the rear trunk flow.

천음속 영역에서 과소 팽창 화염이 종안정성에 미치는 영향에 관한 연구 (Effects of Underexpanded Plume in Transonic Region on Longitudinal Stability)

  • 정석영;윤성준
    • 한국항공우주학회지
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    • 제32권8호
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    • pp.118-128
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    • 2004
  • 화염에 의한 종방향 공력 특성의 변화를 해석하기 위하여 고형 화염 모형을 이용한 풍동 시험과 고형 화염 모형과 제트 화염 모델을 이용한 난류 유동 수치 해석을 실시하였다. 화염 경계면 근사 가법을 이용하여 산출한 형상을 본떠 화염 모형을 제작하였으며 제트 화염 모델링 기법을 이용하여 공기와 실제 화염의 열역학적 차이로 인한 오차를 보정한 공기 제트 화염을 생생하였다. 화염과 외부 공기의 간섭에 대해 난류 모델간의 비교를 통하여 정확도와 격자 의존성 등에서 Spalart-Allmaras 모델이 좋은 결과를 주었다. 수치 해석을 통하여 고형 화염 모형과 제트 화염의 차이를 분석하였으며, 실제 비행 시험에 대한 화염 영향을 분석하기 위하여 연소실과 대기 압력 비와 레이놀즈수에 따른 변화를 해석하였다.

Developing a BIM-Based Methodology Framework for Sustainability Analysis of Low Carbon High-Rise Buildings

  • Gan, Vincent J.L.;Li, Nan;Tse, K.T.;Chan, C.M.;Lo, Irene M.C.;Cheng, Jack C.P.
    • 국제학술발표논문집
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    • The 7th International Conference on Construction Engineering and Project Management Summit Forum on Sustainable Construction and Management
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    • pp.14-23
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    • 2017
  • In high-density high-rise cities such as Hong Kong, buildings account for nearly 90% of energy consumption and 61% of carbon emissions. Therefore, it is important to study the design of buildings, especially high-rise buildings, to achieve lower carbon emissions in the city. The carbon emissions of a building consist of embodied carbon from the production of construction materials and operational carbon from energy consumption during daily operation (e.g., air-conditioning and lighting). An integrated analysis of both types of carbon emissions can strengthen the design of low carbon buildings, but most of the previous studies concentrated mainly on either embodied or operational carbon. Therefore, the primary objective of this study is to develop a holistic methodology framework considering both embodied and operational carbon, in order to enhance the sustainable design of low carbon high-rise buildings. The framework will be based on the building information modeling (BIM) technology because BIM can be integrated with simulation systems and digital models of different disciplines, thereby enabling a holistic design and assessment of low carbon buildings. Structural analysis program is first coupled with BIM to validate the structural performance of a building design. The amounts of construction materials and embodied carbon are then quantified by a BIM-based program using the Dynamo programming interface. Operational carbon is quantified by energy simulation software based on the green building extensible Markup Language (gbXML) file from BIM. Computational fluid dynamics (CFD) will be applied to analyze the ambient wind effect on indoor temperature and operational carbon. The BIM-based framework serves as a decision support tool to compare and explore more environmentally-sustainable design options to help reduce the carbon emissions in buildings.

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M&S 지원을 위한 HEMOS-Cloud 서비스의 경제적 효과 (Economic Impact of HEMOS-Cloud Services for M&S Support)

  • 정대용;서동우;황재순;박성욱;김명일
    • 정보처리학회논문지:컴퓨터 및 통신 시스템
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    • 제10권10호
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    • pp.261-268
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    • 2021
  • 클라우드 컴퓨팅은 서비스 사용자 요구에 따라 컴퓨팅 자원을 임대하여 사용하는 컴퓨팅 패러다임이다. 클라우드 컴퓨팅에서 컴퓨팅 자원은 사용자의 서비스 수요에 따라 컴퓨팅 자원을 확장 또는 축소가 가능하여 전체 서비스 비용 절감 효과를 가질 수 있다. 그리고, M&S (Modeling and Simulation) 기술은 컴퓨팅 자원과 CAE 소프트웨어를 통해 엔지니어링 분석 작업 결과를 얻어, 실제 실험 결과가 없이 제품의 상태를 시뮬레이션을 수행하여 분석하는 방법이다. M&S 기술은 FEA(Finite Element Analysis), CFD(Computational Fluid Dynamics), MBD(Multibody Dynamics) 및 최적화 분야에서 활용된다. M&S 통한 작업 절차는 전처리, 해석, 후처리 단계로 구분된다. CAE 소트프웨어를 통한 3D 모델링 작업인 전/후처리는 GPU 연산이 집약적이며, 3D 모델 해석은 CPU 또는 GPU 연산이 요구된다. 일반적인 개인 데스크톱에서 복잡한 3D 모델을 해석하는 시간이 많이 소요된다. 결과적으로, M&S를 원활하게 수행하기 위해서는 고성능 컴퓨팅 자원이 요구된다. 이 문제를 해결하기 위해 우리는 통합 클라우드 및 클러스터 컴퓨팅 환경인 HEMOS-Cloud 서비스를 제안한다. 제안한 클라우드 기반 방식에서는 M&S에 필요한 전/후처리 및 솔버 작업을 원활하게 수행할 수 있도록 구성했다. 이 시스템에서 전/후처리는 VDI(Virtual Desktop Infrastructure)에서 수행되고 해석은 클러스터 환경에서 수행된다. 각 용도에 맞게 서로 다른 환경에서 분리하여 컴퓨팅 자원 간에 간섭을 최소화했다. HEMOS-Cloud 서비스는 기업 또는 학교에서 M&S의 경험이 필요로 하는 사용자에게 CAE 소프트웨어와 컴퓨팅 자원을 제공한다. 본 논문에서는 HEMOS-Cloud 서비스의 경제적 파급효과를 산업연관분석을 활용하여 분석했다. 전문가의 의견을 반영하여 조정된 계수를 통한 분석 결과는 생산유발효과 74억원, 부가가치유발효과 41억원, 취업자유발효과 10억원당 50명으로 분석되었다.

연속주조 빌렛의 3차원 열 및 유동해석 (Three-dimensional Numerical Modeling of Fluid Flow and Heat Transfer in Continuously Cast Billets)

  • 이성윤;이상목;박중길;홍준표
    • 한국주조공학회지
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    • 제20권5호
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    • pp.290-299
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    • 2000
  • A three-dimensional model was developed in order to simulate heat and fluid flow of a continuous casting billet. The model was coded with the general-purpose CFD program FIDAP, using the finite element method. The present model consists of 2 individual calculation schemes, named model 1 and model 2. Mold region only was calculated to check the pouring stream through submerged nozzle with model 1. Entire region, which consists of mold, secondary cooling, radiation cooling was calculated to predict crater end position, temperature profile and solid shell profile(model 2). Standard $k-{\bullet}\hat{A}$ turbulence model has been applied to simulate the turbulent flow induced by submerged nozzle. Enthalpy method was adopted for the latent heat of solidification. Fluid flow in mushy zone was treated using variable viscosity approach. The more casting speed and superheat increased, the more metallurgical length increased. The shell thickness at the mold exit is proved to be mainly controlled by superheat by the present simulation. It may be concluded that the present model can be successfully applied far the prediction of heat and fluid flow behavior in the continuous casting process.

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고분자전해질 연료전지에서 전기화학반응 열생성에 의한 열전달특성 (Heat transport characteristics by heat generation of electrochemical reactions in proton exchange membrane fuel cell)

  • 조선아;이필형;한상석;황상순
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.3377-3382
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    • 2007
  • In proton exchange membrane fuel cell, the heat is generated at the catalyst layer as result of exothermic electrochemical reaction. This heat increases temperature of gas diffusion layer and membrane whose conductivity is very sensitive to humidity, function of temperature. So it is very important to analysis heat transfer through fuel cell to maintain temperature at specified range. In this paper numerical simulation was done including reversible, irreversible, ionic resistance, water formation loss to source term of energy equation. Results show that irreversible and water formation loss contributes mainly to energy source term and as current density increases, all of energy source terms become increased and Nusselt number is increased as results of more heat generation. Particularly irreversible loss is found to be predominant among the all energy source and water formation at cathode channel influences the temperature distribution of fuel cell greatly.

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변압기 냉각 특성 해석 (Cooling Characteristic Analysis of Transformer's Radiator)

  • 김현재;양시원;김원석;권기영;이민제
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.1920-1925
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    • 2007
  • A transformer is a device that changes the current and voltage by electricity induced between coil and core steel, and it is composed of metals and insulating materials. In the core of the transformer, the thermal load is generated by electric loss and the high temperature can make the break of insulating. So we must cool down the temperature of transformer by external radiators. According to cooling fan's usage, there are two cooling types, OA(Oil Natural Air Natural) and FA(Oil Natural Air Forced). For this study, we used Fluent 6.2 and analyzed the cooling characteristic of radiator. we calculated 1-fin of detail modeling that is similar to honeycomb structure and multi-fin(18-fin) calculation for OA and FA types. For the sensitivity study, we have different positions(side, under) of cooling fans for forced convection of FA type. The calculation results were compared with the measurement data which obtained from 135.45/69kV ultra transformer flowrate and temperature test. The aim of the study is to assess the Fluent code prediction on the radiator calculation and to use the data for optimizing transformer radiator design.

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Eulerian Particle Flamelet Modeling for Combustion Processes of Bluff-Body Stabilized Methanol-Air Turbulent Nonpremixed Flames

  • Kim, Seong-Ku;Kang, Sung-Mo;Kim, Yong-Mo
    • Journal of Mechanical Science and Technology
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    • 제20권9호
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    • pp.1459-1474
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    • 2006
  • The present study is focused on the development of the RIF (Representative Interactive Flamelet) model which can overcome the shortcomings of conventional approach based on the steady flamelet library. Due to the ability for interactively describing the transient behaviors of local flame structures with CFD solver, the RIF model can effectively account for the detailed mechanisms of $NO_x$ formation including thermal NO path, prompt and nitrous $NO_x$ formation, and reburning process by hydrocarbon radical without any ad-hoc procedure. The flamelet time of RIFs within a stationary turbulent flame may be thought to be Lagrangian flight time. In context with the RIF approach, this study adopts the Eulerian Particle Flamelet Model (EPFM) with mutiple flamelets which can realistically account for the spatial inhomogeneity of scalar dissipation rate. In order to systematically evaluate the capability of Eulerian particle flamelet model to predict the precise flame structure and NO formation in the multi-dimensional elliptic flames, two methanol bluffbody flames with two different injection velocities are chosen as the validation cases. Numerical results suggest that the present EPFM model has the predicative capability to realistically capture the essential features of flame structure and $NO_x$ formation in the bluff-body stabilized flames.

Modeling flow and scalar dispersion around Cheomseongdae

  • Kim, Jae-Jin;Song, Hyo-Jong;Baik, Jong-Jin
    • Wind and Structures
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    • 제9권4호
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    • pp.315-330
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    • 2006
  • Flow and scalar dispersion around Cheomseongdae are numerically investigated using a three-dimensional computational fluid dynamics (CFD) model with the renormalization group (RNG) $k-{\varepsilon}$ turbulence closure scheme. Cheomseongdae is an ancient astronomical observatory in Gyeongju, Korea, and is chosen as a model obstacle because of its unique shape, that is, a cylinder-shaped architectural structure with its radius varying with height. An interesting feature found is a mid-height saddle point behind Cheomseongdae. Different obstacle shapes and corresponding flow convergences help to explain the presence of the saddle point. The predicted size of recirculation zone formed behind Cheomseongdae increases with increasing ambient wind speed and decreases with increasing ambient turbulence intensity. The relative roles of inertial and eddy forces in producing cavity flow zones around an obstacle are conceptually presented. An increase in inertial force promotes flow separation. Consequently, cavity flow zones around the obstacle expand and flow reattachment occurs farther downwind. An increase in eddy force weakens flow separation by mixing momentum there. This results in the contraction of cavity flow zones and flow reattachment occurs less far downwind. An increase in ambient wind speed lowers predicted scalar concentration. An increase in ambient turbulence intensity lowers predicted maximum scalar concentration and acts to distribute scalars evenly.

Understanding Switching Arcs and Dielectric Capability of a SF6 Self-Blast Interrupter

  • 이원호;김철수;이종철
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.196.2-196.2
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    • 2016
  • The design and development procedures of SF6 gas circuit breakers are still largely based on trial and error through testing although the development costs go higher every year. The computation cannot cover the testing satisfactorily because all the real processes arc not taken into account. But the knowledge of the arc behavior and the prediction of thermal plasmas inside SF6 interrupters by numerical simulations are more useful than those by experiments due to the difficulties to obtain physical quantities experimentally and the reduction of computational costs in recent years. In this paper, in order to get further information into the interruption process of a SF6 self-blast interrupter, which is based on the combination of thermal expansion and arc rotation, gas flow simulations with a CFD-arc modeling are performed during the whole switching process such as high-current period, pre-current zero period, and current-zero period. Through the complete work, the temperature of residual arcs as well as the breakdown index after current zero should be a good criterion to predict the dielectric capability of interrupters.

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