• 제목/요약/키워드: Droplet-Wall Impingement Model

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연료분무의 벽면충돌과정 해석에 대한 수치모델링 (Numerical Modeling of Droplet/Wall Impingement Process)

  • 문윤완;유용욱;김용모
    • 한국분무공학회지
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    • 제4권2호
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    • pp.10-18
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    • 1999
  • The droplet/wall impingement processes in the diesel-like environment are numerically modeled. In order to evaluate the predictive capability of the droplet/wall impingement model developed in this study, computations are carried out for two ambient temperature conditions. Numerical results indicate that the present droplet/wall impingement model reasonably well predicts the basic features of the impinging spray dynamics.

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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.

A Study on the Behavior and Heat Transfer Characteristics of Impinging Sprays

  • Yang, Hei-Cheon;Park, Sang-Kyoo
    • Journal of Mechanical Science and Technology
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    • 제15권3호
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    • pp.374-383
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    • 2001
  • The spray/wall interaction is considered as an important phenomenon influencing air-fuel mixing in the internal combustion engines. In order to adequately represent the spray/wall interaction process, impingement regimes and post-impingement behavior have been modeled using experimental data and conservation constraints. The modeled regimes were stick, rebound, spread and splash. The tangential velocities of splashing droplets were obtained using a theoretical relationship. The continuous phase was modeled using the Eulerian conservation equations, and the dispersed phase was calculated using a discrete droplet model. The numerical simulations were compared to experimental results for spray impingement normal to the wall. The predictions for the secondary droplet velocities and droplet sizes were in good agreement with the experimental data.

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분무액적과 벽의 상호작용에 대한 연구 (Study of Spray Droplet/Wall Interaction)

  • 양희천;유홍선;정연태
    • 한국자동차공학회논문집
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    • 제6권4호
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    • pp.86-100
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    • 1998
  • The impingement of the fuel spray on the wall within the combustion chamber in compact high-pressure injection engines and on the intake port wall in port-fuel-inje- ction type engines is unavoidable. It is important to understand the characteristics of impinging spray because it influences on the rate of fuel evaporation and droplet distrib- ution etc. In this study, the numerical study for the characteristics of spray/wall interaction is performed to test the applicability and reliability of spray/wall impingement models. The impingement models used are stick model, reflect model, jet model and Watkins and Park's model. The head of wall-jet eminating radilly outward from the spray impingement site contains a vortex. Small droplets are deflected away from the wall by the stagnation flow field and the gas wall-jet flow. While the larger droplets with correspondingly higher momentum are impinged on the wall surface and them are moved along the wall and are rolled up by wall-jet vortex. Using the Watkins and Park's model the predicted results show the most reasonable trend. The rate of increase of spread and the height of the developing wall-spray is predicted to decrease with increased ambient pressure(gas density).

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과냉각대형액적 충돌예측을 위한 오일러리안 기반 수치 모델링 (Eulerian-based Numerical Modeling for Impingement Prediction of Supercooled Large Droplets)

  • 정성기;김지홍
    • 한국항공우주학회지
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    • 제40권8호
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    • pp.647-654
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    • 2012
  • 외부 환경조건에 의한 항공기 위협인자로서 과냉각 대형 액적은 그 중요성이 지속적으로 보고되고 있다. 이러한 대형 액적의 거동은 상대적으로 작은 액적과 달리 그 형태가 변화하며 액적이 표면과 충돌시 파편이 발생하는 등 다양한 물리적 특성을 나타낸다. 이러한 대형 액적의 거동을 시뮬레이션 하기 위해 비정렬 격자계 기반 2차원 압축성 Navier-Stokes 코드와 액적 거동 시뮬레이션 코드를 개발하였다. 또한 대형 액적의 물리적 현상을 모사하기 위해 반경험적 기법에 기반한 액적항력모델과 액적-고체표면 충돌 모델을 기존 액적장 지배방정식의 액적항력계수 및 경계면의 수치적 경계조건으로 적용하였다. 그 결과 풍동 시험과 액적충돌 영역 및 최대 축적율은 매우 유사하게 나타난 반면 NACA23012 익형의 아랫면 주위 축적율의 경향은 풍동 시험보다 다소 크게 나타났다.

벽면에 충돌하는 분무의 미립화에 관한 수치적 모델 (A Numerical Model for Atomization of an Impinging Spray on the Wall)

  • 조미옥;허강열
    • 한국분무공학회지
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    • 제2권1호
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    • pp.36-45
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    • 1997
  • A spray-wall impingement model for fuel sprays is proposed and implemented as a module into the KIVA-POSTECH code. The model is based on the single droplet experiments. The droplet behaviors after impingement are determined from experimental correlations. Different behaviors of impinged droplets depend on the wall temperature and the critical temperature of the fuel. Fuel film formation is taken into account so that the model can be applicable to any wall temperature and injection conditions. Computational results on a normal and on inclined wall are in good agreement for the spray shape and penetration. More validation against experiments and development of the heat transfer model are needed for further improvement.

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SLD 조건에서 착빙 해석 정확도 개선을 위한 Wall-Droplet Interaction 수치 모델링 및 Deformation 모델 비교 연구 (Wall-Droplet Interaction Modeling and Comparative Study on Deformation Models for the Improvement of Icing Analysis Under SLD Conditions)

  • 배진규;이관중
    • 한국항공우주학회지
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    • 제48권4호
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    • pp.255-267
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    • 2020
  • SLD 조건은 직경이 50㎛ 이상인 과냉각대형액적의 분포가 지배적인 결빙 환경을 뜻한다. SLD 조건에서는 액적의 큰 크기로 인해 wall-droplet interaction, deformation 등의 물리적 현상이 착빙 과정에 중요한 영향을 미친다. 그에 따라 SLD 효과를 수치적으로 모사하기 위한 다양한 연구가 수행되었고, 부착률을 수정하는 후처리 기법을 통해 wall-droplet interaction 현상을 고려하는 방법이 제안되었다. 그러나 이 방법은 액적이 충돌하는 벽면 특성을 제대로 고려하지 않는 반경험식(Wright Model)을 사용하기 때문에 착빙 영역에서 여전히 부착률과 부착 한계를 과대 예측한다. 이 문제를 해결하기 위해 본 연구에서는 착빙 영역을 세 개의 영역으로 구분하였다. 그리고 벽면 특성을 고려하는 Bai and Gosman rebound 모델을 바탕으로 개발한, 새로운 wall-droplet interaction 모델을 후처리 기법에 도입했다. 그리고 액적의 항력계수를 증가시키는 deformation 현상을 반영하기 위해 3가지 deformation 모델을 비교·분석하여 가장 적합한 모델을 선정했다. 앞의 내용을 바탕으로 개발한 SLD 결빙 예측 코드를 검증하기 위해 실험 데이터를 활용하여 해석을 수행했다. 그 결과 수정된 후처리 기법은 착빙 영역에서 rebound 현상에 의한 부착률 감소를 더욱 크게 예측하였고 부착 한계와 부착률 크기를 예측하는 데 있어 향상된 정확성을 보여줬다. 그리고 deformation에 의한 항력계수의 증가를 가장 크게 결정하는 Wiegand model이 실험과 가장 유사한 것을 확인할 수 있었다.

벽면 캐비티 각에 따른 GDI 분무의 벽 충돌 과정에 대한 수치적 연구 (Numerical Study on Wall Impingement Process of GDI Spray According to Wall Cavity Angle)

  • 심영삼;김덕줄;최경민
    • 대한기계학회논문집B
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    • 제31권12호
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    • pp.971-978
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    • 2007
  • A spray-wall impingement process of a hollow-cone fuel spray from the high-pressure swirl injector in the Gasoline Direct Injection (GDI) engine were experimented and calculated at various wall geometries. The Linearized Instability Sheet Atomization (LISA) & the Aerodynamically Progressed Taylor Analogy Breakup (APTAB) model and the Gosman model were applied to model the breakup and the wall impingement process of the hollow-cone fuel spray. The numerical modelings were implemented in the modified KIVA code. The calculation results of spray characteristics, such as a spray development process and a radial distance after wall impingement, compared with the experimental results by the Laser Induced Exciplex Fluorescence (LIEF) technique. The droplet size distribution and the ambient gas velocity field, which are generally difficult to obtain by the experimental methods, were also calculated and discussed. It was found that the radial distance after wall impingement and Sauter Mean Diameter (SMD) decreased with increasing a cavity angle.

비등방성 난류특성을 고려한 분무의 벽면충돌 현상에 대한 수치해석 연구 (Numerical Study of Impinging Sprays Considering Anisotropic Characteristics of Turbulence)

  • 고권현;유홍선;이성혁
    • 한국자동차공학회논문집
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    • 제11권3호
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    • pp.77-84
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    • 2003
  • It is an aim of this study to perform extensive numerical study for analyzing the anisotropic turbulence effects on spatial and temporal behaviors of diesel sprays after wall impingement. The turbulence model of Durbin is used for comparisons with the $k-\varepsilon$ model. The turbulence-induced dispersions of droplets are considered to describe the anisotropy of turbulence effectively and the spray/wall interactions are simulated using the model of Lee and Ryou. The present study investigates the internal structures of impinging diesel sprays such as Sauter mean diameter (SMD), loca1 droplet velocities, and local gas velocities and also compares the results predicted by two turbulence models with the experimental data. The Durbin's model considering the anisotropy of turbulence predicts both gas and droplet tangential velocities better than the$k-\varepsilon$ model does. It is concluded that the anisotropy of turbulence should be considered in simulating impinging diesel sprays.

Modeling of Diesel Spray Impingement on a Flat Wall

  • Lee, Seong-Hyuk;Ryou, Hong-Sun
    • Journal of Mechanical Science and Technology
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    • 제14권7호
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    • pp.796-806
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    • 2000
  • To understand the transient behavior of droplets after impingement in a diesel engine, a numerical model for diesel sprays impinging on a flat wall is newly developed by the proposition of several mathematical formulae to determine the post-impingement characteristics of droplets. The new model consists of three representative regimes such as rebound, deposition and splash. The gas phase is modeled in terms of the Eulerian conservation equations, and the dispersed phase is calculated using a discrete droplet model. To validate the new model, the calculated results are compared with several experimental data. The results show that the new model is generally in good agreement with the experimental data. Therefore, it is thought that the new model is acceptable for the prediction of transient behavior of wall sprays.

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