• 제목/요약/키워드: Eulerian-lagrangian multi-phase method

검색결과 5건 처리시간 0.019초

Eulerian-Lagrangian 다상 유동해석법에 의한 피에조인젝터의 니들-노즐유동 상관성 연구 (A Study on Relation of Needle-Nozzle Flow of Piezo-driven Injector by using Eulerian-Lagrangian Multi-phase Method)

  • 이진욱;민경덕
    • 한국자동차공학회논문집
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    • 제18권5호
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    • pp.108-114
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    • 2010
  • The injection nozzle of an electro-hydraulic injector is being opened and closed by movement of a injector's needle which is balanced by pressure at the nozzle seat and at the needle control chamber, at the opposite end of the needle. In this study, the effects of needle movement in a piezo-driven injector on unsteady cavitating flows behavior inside nozzle were investigated by cavitation numerical model based on the Eulerian-Lagrangian approach. Aimed at simulating the 3-D two-phase flow behavior, the three dimensional geometry model along the central cross-section regarding of one injection hole with real design data of a piezo-driven diesel injector has been used to simulate the cavitating flows for injection time by at fully transient simulation with cavitation model. The cavitation model incorporates many of the fundamental physical processes assumed to take place in cavitating flows. The simulations performed were both fully transient and 'pseudo' steady state, even if under steady state boundary conditions. As this research results, we found that it could analyze the effect the pressure drop to the sudden acceleration of fuel, which is due to the fastest response of needle, on the degree of cavitation existed in piezo-driven injector nozzle.

Numerical Study of Interior Ballistics with Moving Boundary

  • Sung, Hyung-Gun;Park, Sol;Hong, Gi-Cheol;Roh, Tae-Seong;Choi, Dong-Whan
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년 영문 학술대회
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    • pp.659-665
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    • 2008
  • The 1-D numerical study of the interior ballistics has been conducted. The unsteady compressible 1-D CFD code using SIMPLER algorithm and QUICK scheme has been developed. The mathematical model of the two-phase flow has been established for the behavior of the interior ballistics. The moving boundary due to the projectile motion as the physical phenomena of the interior ballistics results in the varied control volume. In order to analyze the moving boundary, the numerical codes, which apply the ghost-cell extrapolation method and the Lagrangian method respectively, have been developed. The ghost-cell extrapolation method has been used in the Eulerian coordinate system. The Lagrangian method has been used in Non-Eulerian coordinate system. These codes have been verified through the analysis of the free piston motion problem in the tube. Through this study, the basic techniques of the numerical code for the multi-dimensional two-phase flow of the interior ballistics have been obtained.

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Numerical Simulation of Two-Phase Flow field and Performance Prediction for Solid Rocket Motor Nozzle

  • Wahab, Shafqat;Kan, Xie;Yu, Liu
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년 영문 학술대회
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    • pp.275-282
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    • 2008
  • This paper presents numerical investigation of multi-phase flow in solid rocket motor nozzle and effect of multi-phases on the performance prediction of the Solid Rocket Motor. Aluminized propellants are frequently used in solid rocket motors to increase specific impulse. An Eulerian-Lagrangian description has been used to analyze the motion of the micrometer sized and discrete phase that consist of the larger particulates present in the Solid Rocket Motor. Uniform particles diameters and Rosin-Rammler diameter distribution method has been used for the simulation of different burning of aluminum droplets generating aluminum oxide smokes. Roe-FDS scheme has been used to simulate the effects of the multi-phase flow. The results obtained show the sensitivity of this distribution to the nozzle flow dynamics, primarily at the nozzle inlet and exit. The analysis also provides effect of two phases on performance prediction of Solid Rocket Motor.

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Eulerian-Lagrangian 다상 유동해석법에 의한 피에조 인젝터의 노즐 내부 비정상 캐비테이션 유동해석 (Analysis of Unsteady Cavitating Flows in Fuel Injection Nozzle of Piezo-driven Injector by Eulerian-Lagrangian Multi-phase Method)

  • 이진욱;민경덕;강건용
    • 한국분무공학회지
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    • 제9권4호
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    • pp.38-45
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    • 2004
  • This study describes the analysis results of unsteady cavitating flows behavior inside nozzle of the prototype piezo-driven injector. This piezo-driven injector has been recognised as one of the next generation diesel injector due to a higher driven efficiency than the conventional solenoid-driven injector. The three dimensional geometry model along the central cross-section regarding of one injection hole has been used to simulate the cavitating flows for injection time by at fully transient simulation with cavitation model. The cavitation model incorporates many of the fundamental physical processes assumed to take place in cavitating flows. The simulations performed were both fully transient and 'pseudo' steady state, even if under steady state boundary conditions. We could analyze the effect the pressure drop to the sudden acceleration of fuel, which is due to the fastest response of needle, on the degree of cavitation existed in piezo-driven injector nozzle

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계면활성제에 의한 NAPL 오염의 정화효율 수치 모의를 위한 모델 개발 (Development of Numerical Model for Simulating Remediation Efficiency Using Surfactant in a NAPL Contaminated Area)

  • 석희준;손봉호;박성민;전병훈
    • 청정기술
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    • 제25권3호
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    • pp.206-222
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    • 2019
  • 최근에는 다양한 다상오염물 거동 흐름 모델들이 개발되었고 일부는 상용화되기도 하였으나, 대부분이 압력기저접근방식을 갖고 개발된 프로그램들이므로 다양한 수치적 어려움을 내재하고 있다. 이러한 수치적 어려움을 극복하기 위해서는 분율흐름접근방식을 따르는 기존 다상흐름거동 수치모델로 개발된 MultiPhaSe flow (MPS) 모델에 계면활성제에 의한 용해 현상을 모사할 수 있는 오염물 거동 모듈을 결합해서 MultiPhaSe flow and TranSport (MPSTS) 프로그램을 본 연구에서 개발하였다. 개발된 모델은 Clement의 해석 해를 사용하여 검증하였다. 여기서 MPSTS프로그램은 입자추적법과 결합한 라그랑지안-율러리안 기법을 이용해서 상간물질전달 효과와 다상내 오염물 거동 기능을 결합한 계면활성제 활용 복원과정을 모사할 수 있는 프로그램이다. 본 연구에서는 개발된 모델을 이용해서 소수성 액체(non aqueous phase liquid, NAPL)로 오염된 지역의 계면활성제에 의한 오염 정화 시 층상구조를 가지는 수리지질학적 불 균질성이 복원효율에 미치는 영향을 수치 모의 하였다. 수치모의 결과, 하부 층의 수리전도도가 상부 층의 수리전도도보다 10배, 20배, 50배로 큰 경우에 대해서 하부에서 물속에 용해된 디젤의 농도가 높게 나타난다. 왜냐하면 계면활성제가 하부 층을 따라서 좀 더 빨리 움직여서 하부 층에서 잔류 소수성 액체를 좀 더 많이 용해시켰기 때문이다.