• 제목/요약/키워드: Turbulent Reacting Flow

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사각 스월 연소기에서 냉각 유동을 이용한 연소기 내 유동 불안정 감쇠 및 조종 (Dissipation and Control of Flow Instability in a Rectangular Swirl Combustor using Cooling Flow Injection)

  • 유광희;김종찬;성홍계
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2009년도 제33회 추계학술대회논문집
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    • pp.236-241
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    • 2009
  • 사각 스월 연소기의 냉각 유동에 의한 비반응 난류 유동 특성을 파악하기 위하여 3차원 Large Eddy Simulation(LES)을 수행하였고, 후처리 기법으로 Proper Orthogonal Decomposition(POD) 분석을 이용하였다. 해석에 이용된 연소기 모델은 GEAE사의 LM6000 연소기이다. 냉각 유동의 유입시 전단층(shear layer)의 속도 증가로 인해 중심 재순환 영역의 와류 강도는 강해진 반면 코너 재순환 영역의 와류 강도는 약해진 것을 관찰하였다. 또한 연소실 내 압력변동 폭이 감소하였으며, longitudinal acoustic mode의 감쇠가 두드러지게 나타난 것을 확인하였다.

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사염화탄소($CCl_4$) 소각을 위한 로타리 킬른 소각로 3차원 난류반응 컴퓨터 프로그램 개발( I ) (Development of a 3-Dimensional Turbulent Reaction Computer program for the Incineration of a Carbon Tetrachloride($CCl_4$) ( I ))

  • 엄태인;장동순
    • 한국안전학회지
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    • 제9권1호
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    • pp.100-109
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    • 1994
  • In this study, it is investigated that the possibility of the numerical simulation for the incineration of the hazardous material, crbon tetrachloride($CCl_4$). A 3-dimensional numerical technology is applied for turbulent reacting flows of the full-scale Dow Chemical incinerator. The calculations are made by a CRAY-2S, super computer. The major parameters considered in this study are kiln revolution rate (rpm), filling ratio of the solid waste(f), burner Injection velocity and angle, and turbulent air jets for swirl. And the employed turbulent reaction model is the eddy break-up model which is a kind of fast chemistry model assuming general equilibrium and used for a premixed flame. The calculated flow fields are presented and discussed. 1) The presence of turbulent air nozzles for swirl gives rise to visible increase of the convective motion over the region of the solid waste. This implies the possibility to enhance the mixing of the waste with the surrounding all and thereby to reduce thermal and species stratification, which were reported in a large rotary kiln operation. 2) Considering that the location of the recirculation region has a strong relation with the heating rate of the solid waste, the control of the recirculation region by the burner injection angle Is quite desirable in the sense of the flexible design of the rotary kiln incinerator for a carbon tetrachloride. 3) Finally, it is found that the eddy break-up model Is not suitable for carbon tetrachloride($CCl_4$) because this model is not incorporated the flame inhibition trend due to the presence $CCl_4$compound.

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희박연소에서 발생하는 메탄의 농도 상호작용과 삼중화염에 대한 연구 (Concentration Interaction of Premixed and Triple-layer Flames in Lean Burn with Methane Fuel)

  • 오태균;정석호
    • 한국자동차공학회논문집
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    • 제14권6호
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    • pp.171-178
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    • 2006
  • The performance in the practical combustion system including reciprocating engines and gas turbine combustors is being much governed by turbulent reacting flow that is often analyzed by both a laminar flamelets concept and flame interaction. The characteristics of laminar flame interaction have been investigated numerically to provide basic understanding of wrinkled turbulent flames under concentration interaction resulting from inhomogeneity in fuel-air mixing, especially focused on the transition of flame characteristics such as diffusion flame, partially premixed diffusion flame, and triple-layer flame by the variation in the degree of premixedness. The extinction stretch rates to the premixedness have also been obtained in this paper. The boundary defining the regime of the existence of triple-layer flames as functions of both stretch rate and premixedness has been determined which agrees well with previously reported experiment measuring OH radical concentration peaks based on PLIF.

변환효율 향상을 위한 횡방향 가변 셀밀도법을 사용한 자동차용 촉매변환기의 수치적 설계 (Numerical Design of Auto-Catalyst Substrate for Improved Conversion Performance Using Radially Variable Cell Density)

  • 정수진;김우승
    • 대한기계학회논문집B
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    • 제24권12호
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    • pp.1596-1607
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    • 2000
  • The optimal design of auto-catalyst needs a good compromise between the pressure drop and flow uniformity in the substrate. One of the effective methods to achieve this goal is to use the concept of radially variable cell density. But this method has not been examined its usefulness in terms of chemical behavior and conversion performance. In this work, two-dimensional performance prediction of catalyst coupled with turbulent reacting flow simulation has been used to evaluated the benefits of this method n the flow uniformity and conversion efficiency. The results showed that two cell combination of 93cpsc and 62 cpsc was the most effective for improved pressure drop and conversion efficiency due to balanced space velocity and efficient usage of geometric surface area of channels. It was also found that large temperature difference between the bricks in case that the edge of the frontal face of brick has too much lower cell density(less than 67% of cell density of the center of the brick). This study has also demonstrated that the present computational results show the better prediction accuracy in terms of CO, HC and NO conversion efficiencies compared to those of conventional 1-D adiabatic model by comparison with experimental results.

확대유로내의 Bluff-Body 후류확산화염의 구조 및 특성 2 (Structure and Characteristics of Diffusion Flaame behind a Bluff-body in a Divergent Flow(II))

  • 최병륜;이중성
    • 대한기계학회논문집
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    • 제19권11호
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    • pp.2981-2994
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    • 1995
  • In order to elucidate the effects of positive pressure gradient on flame properties, structure and stabilization, an experimental study is made on turbulent diffusion flame stabilized by a circular cylinder in a divergent duct flow. A commercial grade gaseous propane is injected from two slits on the rod as fuel. In this paper, stabilization, characteristics and flame structure are examined by varying the divergent angle of duct. Temperature, ion current and Schlieren photographs were measured. It is found that critical divergent angle is expected to be about 8 ~ 12 degree through blow-off velocity pattern to divergent angle and the positive pressure gradient influences the flame temperature, intensity of ion current and eddy structure behind the rod. With the increase of divergent angle, typical temperature of recirculation zone is low but intensity of ion current is high in shear layer behind rod. Energy distributions of fluctuating temperature and ion current signals turn up low frequency corresponding to large scale eddies but high frequency corresponding to small scale eddies as well as low with the increase of divergent angle. Therefore the flame structure becomes a typical distributed-reacting flame.

초임계 압력에서 기체수소/액체산소의 연소과정 해석 (Analysis of Gaseous Hydrogen/liquid Oxygen Combustion Processes at Supercritical State)

  • 김태훈;김성구;김용모
    • 한국분무공학회지
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    • 제15권4호
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    • pp.189-194
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    • 2010
  • This study has been mainly motivated to numerically model the transcritical mixing and reacting flow processes encountered in the liquid propellant rocket engines. In the present approach, turbulence is represented by the extended k-$\varepsilon$ turbulence model. To account for the real fluid effects, the propellant mixture properties are calculated by using SRK (Souve-Redlich-Kwong) equation of state model. In order to realistically represent the turbulence-chemistry interaction in the turbulent non-premixed flames, the flamelet approach based on the real fluid flamelet library has been adopted. Based on numerical results, the detailed discussions are made for the real fluid effects and the precise structure of the transcritical cryogenic liquid nitrogen jet and gaseous hydrogen/liquid oxygen coaxial jet flame.

대전 4공단 소각로 후연소로 모델 연구 (Numerical Study of the Post Combustion Chamber of Grate Type Incinerator in Daejon 4th Industrial Complex)

  • 김혜숙;신미수;장동순;박병수;엄태인
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2002년도 추계 학술대회논문집
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    • pp.133-138
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    • 2002
  • A 3-D axisymmetric computer program is developed to predict the NO behavior in SNCR system for the stoker incinerator with the waste treatment capacity, 200ton/day. To this end a turbulent reacting flow field calculation is made using proper assumption and empiricism. The stoker bed is assumed to be a homogeneous waste-volatilized gaseous state. The initial composition or reactants are assumed based on the data of the ultimate analysis. Turbulent is resolved by k-e model and turbulent reaction is handled by eddy-breakup model harmonized with empirical chemistry data for gaseous combustion, NO and urea reaction. The liquid droplet is traced by Lagrangian method incorporated by aerodynamic drag, Coriolis and crntrifugal forces. Radiation is treated by sensible heat loss model. Calculation results are in good agreement with experimental data at the outlet of post combustion chamber in Daejon 4th industrial complex. The flue gas shows the temperature range of $900\sim1000^{\circ}C$, velocity of 5m/s and NO concentration of 140ppm at the exit while the measured temperature, flue gas velocity and NO concentration are $967^{\circ}C$, $3\sim4m/s$ and $100\sim200ppm$respectively. Using the developed computer program a parametric study has been made with the variation of heat content of waste, castable length and SNCR variables for the determination of proper injector location. In general, the calculated results are consistent and physically acceptable.

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디젤 NOx 후처리 장치에 있어서 암모니아 SCR 시스템 혼합영역 내 가스유동의 유입열 수치모델링에 관한 연구 (A Study on Numerical Modeling of the Induced Heat to Gaseous Flow inside the Mixing Area of Ammonia SCR System in Diesel Nox After-treatment Devices)

  • 배명환;샤이풀
    • 대한기계학회논문집B
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    • 제32권11호
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    • pp.897-905
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    • 2008
  • Selective catalytic reduction(SCR) is known as one of promising methods for reducing $NO_x$ emissions in diesel exhaust gases. $NO_x$ emissions react with ammonia in the catalyst surface of SCR system at working temperature of catalyst. In this study, to raise the reacting temperature when the exhaust gas temperature is too low, a heater is located at the bottom of SCR reactor. At an ambient temperature, ammonia is radially injected perpendicular to the exhaust gas flow at inlet pipe and uniformly mixed in the mixing area after being impinged against the wall. To predict the turbulent model inside the mixing area of SCR system, the standard ${\kappa}\;-\;{\varepsilon}$ model is applied. This work investigates numerically the effects of induced heat on the gaseous flow. The results show that the Taylor-$G{\ddot{o}}rtler$ type vortex is generated after the gaseous flow impinges the wall in which these vortices influence the temperature distribution. The addition of heat disturbs the flow structure in bottom area and then stretching flow occurs. Vorticity strand is also formed when heat is continuously increased. Constriction process takes place, however, when a further heat input over a critical temperature is increased and finally forms shed vortex which is disconnected from the vorticity strand. The strong vortex restricts the heat transport in the gaseous flow.

오리멀젼의 가스화 반응 특성에 관한 수치해석 연구 (Numerical Study for the Reacting Characteristics of Orimulsion Gasification)

  • 나혜령;이진욱;윤용승
    • 에너지공학
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    • 제8권2호
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    • pp.309-316
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    • 1999
  • 본 연구에서는 오리멀젼을 연료로 하는 가스화기를 대상으로 전산유체역학 방법론을 적용하여 연료의 가스화 반응 특성을 파악하고자 하였다. 특히, 산화제의 양에 따른 가스화기내 생성 가스의 농도 분포를 예측해 보고, 분무되는 오리멀젼 액적의 직경 및 분사 각도, 그리고 연료 주입구에서의 유입 속도 변화등 연료의 유입 조건에 따른 반응장의 유동 특성을 고찰해 보았다. 본 연구에서는 산화제와 오리멀젼의 비가 0.88일 때 가스화 반응이 가장 활발히 진행되어 연료로서 효용 가치가 있는 CO, H$_2$의 농도가 출구에서 높게 나타났으며, 오리멀젼 액적의 직경이 작을수록 반응성이 좋았고, 분무 각도가 45$^{\circ}$로 유입될때 혼합 효과가 증대되었다. 따라서, 액적을 연료로하는 가스화기 운전시 유입되는 액적의 직경은 수십$\mu\textrm{m}$로 무화시켜 반응시키고, 벽면쪽으로 액적이 치우치지 않도록 적절한 각도로 분무시켜주는 것이 전체시스템의 효율을 항상시킬 수 있는 방안이라고 판단되었다. 또한 선행된 해석 결과를 토대로 100톤/일급 고온.고압 플랜트에 대한 해석을 수행하여 봄으로써 적절한 오리멀젼 가스화기 운전 조건의 기본 자료를 확보하고자 하였다.

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열병합/산업용 보일러 화로에서의 연소 해석 (Modeling of Combustion in Co-Generation / Industrial Boiler Furnace)

  • 김병윤;박부민;이경모
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 추계학술대회논문집B
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    • pp.842-846
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    • 2001
  • Our company produces boilers for industrial usages or power plants. The aim of this study is to investigate the flame structure, heat transfer to evaporator tube wall and NOx emission in the furnaces. Also we are to derive correct FEGT(Furnace Exit Gas Temperature) characteristic curve. When we design furnace and superheater, economizer etc. FEGT characteristic curve is very important factor for optimum design. We calculated turbulent reacting flow, heat transfer and NOx emission in furnace by using numerical modeling with the help of commercial code. Three dimensional steady state calculation is done. k-e turbulence model and equilibrium chemistry combustion model with $\beta-probability$ density function is used. To calculate radiation heat transfer discrete ordinates model is used. And we measured FEGT at several operating plants. Measurement is done by R-type thermocouple. Radiation shield is attached to the thermocouple to prevent radiation effect. Measured and calculated results show good agreement. And we could understand the flame structure and NOx formation positions in each furnaces.

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