• 제목/요약/키워드: 벽면충돌모델

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벽면에서의 입자 고찰에 의한 열전달 수치 모델 (Numerical Modeling of Heat Transfer Due to Particle Impact on a Wall)

  • 권오붕
    • 수산해양기술연구
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    • 제31권3호
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    • pp.296-305
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    • 1995
  • 보일러 및 연소로 등에서의 부유체 환경에서 입자와 벽면 사이의 열전달 현상을 규명하기 위한 수치적인 모델링을 행하였다. 본 연구에서는 벽면에 수직 충돌하는 입자에 의한 열전달 현상을 알아보기 위해 2차원 모델을 사용하였다. 입자표면에서 단열된 경계조건과 등온의 경계조건을 사용한 결과를 비교함으로써, 입자가 벽면에 충돌할 때 유체를 매개로한 전도와 입자에 의해 야기된 대류 현상을 비교할 수 있었다. 계산 결과, 입자가 벽면에 충돌하기 직전에는 입자 크기의 반정도의 거리에 도달할 때까지는 입자의 영향이 별로 없고, 충돌하고 난 후에 영향이 많았다. 또한, Pe 수가 작을 때는 유체를 매개로 한 전도가 지배적이며, Pe 수가 증가할수록 야기된 대류의 효과가 점차 증가하였다

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새로운 충돌모델을 이용한 신형식 디젤연소실 분석 (Analysis of New DI Diesel Combustion Chamber System using New Spray Wall Impaction Model)

  • 장원석;김덕줄;박권하
    • 한국전산유체공학회지
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    • 제2권1호
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    • pp.54-65
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    • 1997
  • Wall wetting in diesel engines has been considered as a bad phenomenon because of fuel deposition which makes fuel/air mixing and evaporation worse. In order to avoid the problem, many research works have been carried out. One of the studies is on new combustion chamber systems which are using spray impacting on a wall. In this study a new type of chamber system is analysed using wall impaction model introduced and assessed in the coupled paper. The gas phase is modelled in terms of the Eulerian continuum conservation equations of mass, momentum, energy and fuel vapour fraction, The liquid phase is modelled following the discrete droplet model approach in Lagrangian form. With various conditions the spray distribution, vapor contour and gas flows are analyzed, and then design factors of those combustion systems are recommended.

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디젤 엔진 분무의 액적 미립화 모델 및 벽면 충돌 모델에 관한 연구 (Modeling of Liquid Droplet Atomization and Spray Wall Impingement of Diesel Sprays)

  • 김홍석;성낙원
    • 대한기계학회논문집B
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    • 제23권1호
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    • pp.69-81
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    • 1999
  • In this research computational methods for the droplet atomization and spray wall impingement are studied for the non-evaporating diesel fuel spray. The TAB(Taylor Analogy Breakup) model and Wave model are compared with experiments in order to describe droplet atomization process. The Watkins model and O'Rourke model are compared to simulate the spray wall impingement. As a result, It is found that the application of the Wave model has a good agreement with the experimental data in the case of high pressure injection. With regard to wall Impingement phenomena, it is found that the Watkins model is appropriate to the high temperature cylinder wall condition, while the O'Rourke model is appropriate to cold starting problem.

디젤분무의 새로운 벽면충돌모델 (New Wall Impaction Model for Diesel Spray)

  • 박권하
    • 한국전산유체공학회지
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    • 제2권2호
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    • pp.80-88
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    • 1997
  • A new wall impaction model for diesel spray is described in this paper. The gas phase is modelled in terms of the Eulerian continuum conservation equations of mass, momentum, energy and fuel vapour fraction. The liquid phase is modelled following the discrete droplet model approach. The droplet parcel contains many thousands of drops assumed to have the same size, temperature and velocity components. The droplet parcel equations of trajectory, momentum, mass and energy are written in Lagrangian form. The new drop-wall interaction model is proposed, which is based on experimental investigations on individual drops, and it is applied for the general non-orthogonal grid. The model is then assessed through comparison with experiments over a wide range of test conditions of sprays. The results are in good agreement with experimental data.

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벽면 충돌 난류 확산화염의 특성 (The Characteristics of Turbulent Diffusion Flame Impinging on the Wall)

  • 박용열;김호영
    • 대한기계학회논문집B
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    • 제23권2호
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    • pp.175-184
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    • 1999
  • A theoretical study on the turbulent round jet diffusion flame impinging on the wall was carried out to predict the characteristics and structure of Impinging jet flame and heat transfer to the wall. Finite chemistry via Arrhenius equation and eddy dissipation model was adopted as a combustion model, and the Favre averaging and $k-{\varepsilon}$ model were Introduced In the theoretical modeling. The SIMPLE algorithm was applied to the calculation. All the transport properties were considered as the variable depending on the temperature and composition. For the parametric study, the distance from nozzle to impinging wall and Reynolds number at nozzle exit were chosen 88 the major parameters. As the results of the present study, the characteristics of flow fields, the distributions of main variables and each chemical species and the flame shapes were obtained. The heat transfer rate from the flame to the wall and the effective heating area were calculated to investigate the Influences of the major parameters on the heat transfer characteristics.

벽면충돌분무 계산에서 확장충돌모델의 적용범위에 관한 고찰 (A Study on Areas of Application of a Extended Collision Model in a Wall Impaction Spray Calculation)

  • 박권하;정창화
    • 대한기계학회논문집B
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    • 제25권8호
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    • pp.1013-1020
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    • 2001
  • This paper addresses to the area where the extended collision model is applied. In order to find the optimum shape of wall sprays, the extended model is applied to the nearest cells of just over the impaction wall, spray core or over all. The droplet distribution, wall spray radii, heights and gas flows are shown in all the cases. Those results show that the best spray shape represents in the case applying the extended model just on the impinging wall.

충돌제트에서의 횡방향 유동 감소를 위한 파형 구조의 유동 및 열전달에 관한 연구 (A Study on Fluid Flow and Heat Transfer of a Corrugated Structure for Crossflow Reduction of Impingement Jet)

  • 황병조;김선호;주원구;조형희
    • 대한기계학회논문집B
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    • 제41권5호
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    • pp.329-339
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    • 2017
  • 충돌제트는 제트가 충돌하는 정체 영역에 매우 높은 열전달을 제공하기 때문에 다양한 분야에서 적용되고 있다. 그러나 제트가 벽면에 부딪친 후 벽면 제트에 의해 야기되는 충돌 챔버 내의 횡방향 유동은 여러 개의 제트로 구성된 배열제트인 경우 하류에 있는 제트 유동을 방해하거나 휘게 할 수 있으며, 이로 인해 배열 충돌제트의 냉각 성능은 감소하게 된다. 파형 구조는 하류 제트에서의 횡방향 유동영향을 줄이기 위해 인접한 충돌 제트 사이에 있는 파형 속에 사용된 냉각 공기를 유입시키는 역할을 하며, 이러한 파형 구조에서의 유동 및 열전달 특성에 대해 수치해석을 수행하였다. 3차원, 정상상태, 비압축성 유동으로 고려하고 해석하였으며 ANSYS-CFX 15.0 코드를 사용하였다. 파형 구조의 형상 변수가 배열 충돌제트의 횡방향 유동 억제에 미치는 영향을 제시하고 분석하였다.

벽면 형상에 따른 중공 원추형 분무의 벽 충돌 과정 모델링 (Modeling of Wall Impingement Process of Hollow-Cone Fuel Spray according to Wall Geometry)

  • 심영삼;최경민;김덕줄
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.3467-3472
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    • 2007
  • The effects of the wall geometry on the spray-wall impingement process of a hollow-cone fuel spray emerging from a high-pressure swirl injector of the Gasoline Direct Injection (GDI) engine were investigated by means of a numerical method. The ized Instability Sheet Atomization (LISA) & Aerodynamically Progressed Taylor Analogy Breakup (APTAB) model for spray atomization process and the Gosman model were applied to model the atomization and wall impingement process of the spray. The calculation results of spray characteristics, such as a spray development process and a radial distance after wall impingement, compared with the experimental ones by the Laser Induced Exciplex Fluorescence (LIEF) technique. It was found that the radial distance of the cavity angle of 90$^{circ]$ after wall impingement was the shortest and the ring shaped vortex was generated near the wall after spray-wall impingement process.

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벽면충돌 가솔린 분무 모델 (Modeling of a Gasoline Spray Impinging on a Wall)

  • 김태완;원영호;박정규
    • 한국자동차공학회논문집
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    • 제9권5호
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    • pp.30-37
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    • 2001
  • Most gasoline engines employ a port injection system to achieve the better fuel-air mixing. A part of injected fuels adheres to the wall or intake valve and forms a film of liquid fuel. The other is secondarily atomized by the spray-wall interaction. A better understanding of this interaction will help in designing injection systems and controlling the strategies to improve engine performance and exhaust emissions. In the present research, the spray-wall interaction was investigated by a laser sheet visualization method. The shape of sprays was pictured at various impinging velocities and angles. The fuel dispersion was estimated by fluorescence light, and the atomization was evaluated by the enlarged images of droplets. The experimental results were compared with model predictions which are based on OPT method. The model has been modified to have the better agreement with the experimental result, and was implemented in the KIVA-II code.

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