• Title/Summary/Keyword: 압축성 2상 유동

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Accurate and Robust Computations of Gas-Liquid Two-Phase Flows Part 1: Development of Shock-Stable Two-Phase Schemes (액체-기체 2상 유동장의 정확하고 강건한 해석 Part 1: 충격파 안정적인 2상 유동 수치기법의 개발)

  • Ihm, Seung-Won;Kim, Chong-Am
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.37 no.1
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    • pp.1-16
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    • 2009
  • In this paper, we introduce two-phase versions of RoeM and AUSMPW+ schemes. Both schemes are originally developed for the gas dynamic problems, and have shown superior accuracy, efficiency and robustness. A new shock discontinuity sensing term is derived from the mixture equation of state, which is commonly used in the RoeM and AUSMPW+ schemes for the stable numerical flux calculation. The developed two-phase versions of the schemes are applied to several liquid-gas, large property discrepancy two-phase test problems, including several shock stability test problems. The results show that both schemes maintain the merits exhibited in gas dynamic problems even in two-phase flows.

A Numerical Validation for Incompressible Two-phase Flow using CLSVOF and Artificial Compressibility Methods (CLSVOF과 가상압축성 기법을 이용한 비압축성 2상 유동 수치해석 검증 연구)

  • Yoo, Young-Lin;Choi, Jeong-Yeol;Sung, Hong-Gye
    • Journal of the Korean Society of Propulsion Engineers
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    • v.21 no.5
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    • pp.71-79
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    • 2017
  • A numerical analysis of the liquid-gas two-phase flows has been conducted. The incompressible equations of the two-phase flows were solved by the artificial compressibility method with the CLSVOF interface capturing method. To analyze the grid dependency of CLSVOF, a numerical analysis of Zalesak's disk and three-dimensional liquid deformation problem were carried out, and the reconstruction of deformation was investigated. The Rayleigh-Taylor instability was numerically analyzed by applying the equations of incompressible two-phase flow, and the surface instability was observed.

자기부상열차의 공력 특성에 관한 수치 연구

  • Won, Seong-Sik;U, Dae-Cheon
    • Proceeding of EDISON Challenge
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    • 2016.11a
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    • pp.55-57
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    • 2016
  • 본 연구에서는 초고속 자기부상열차의 단면도를 통하여 2-D형상을 모델링하고 이를 기반으로 항력과 유동 특성에 대한 분석을 수행하였다. 유동의 마하수가 0.3 이상임을 고려하여 압축성 모델이 사용되었고, 난류모델은 Menter's k-w SST(Shear Stress Transport)모델을 적용시켰다. 2-D 해석과 자기부상열차의 특성상 열차가 공기중에서 주행하고 있는 것으로 가정하고 공력 특성을 해석하였다.

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Accurate and Robust Computations of Gas-Liquid Two-Phase Flows Part 2: Preconditioned Two-Phase Schemes for All Speeds (액체-기체 2상 유동장의 정확하고 강건한 해석 Part 2: 전 마하수 영역 해석을 위한 예조건화)

  • Ihm, Seung-Won;Kim, Chong-Am
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.37 no.1
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    • pp.17-27
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    • 2009
  • Two-phase RoeM and AUSMPW+ schemes are preconditioned for the simulation of all Mach number flows, which are generally of interest for many gas-liquid two-phase application problems, because of large speed of sound in liquid region and low speed of sound in mixture or gas region. Conventional characteristic based schemes lose their accuracy or robustness in low Mach number flows, because their numerical dissipation terms are scaled by speed of sound, which is too large compared with local velocity magnitude in a low Mach region. All speed versions of RoeM and AUSMPW+ reflect the eigenvalues of the preconditioned governing system, which have the same order of magnitude even in low Mach number region. From the asymptotic analysis, it is observed that the discretized system by the developed schemes is consistent with the continuum system in the incompressible limit. The numerical results show the accurate and robust behavior of the proposed shcemes for all speed two-phase flows.

압축기 익렬 성능해석을 위한 알고리즘과 난류모델의 비교

  • 김석훈;이기수;최정열;김귀순;김유일;임진식
    • Proceedings of the Korean Society of Propulsion Engineers Conference
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    • 2000.04a
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    • pp.29-29
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    • 2000
  • 가스터빈 엔진의 성능을 제대로 예측하기 위해서는 먼저 주요 구성품인 압축기, 터빈 등의 성능 자료가 충분히 알려져 있어야 한다. 특히 압축기는 조건의 변화에 따라 성능변화가 크므로 엔진 성능예측시 압축기 성능특성은 매우 중요한 요소라 할 수 있다. 압축기의 경우, 유동의 특성상 역압력 구배로 인한 유동의 박리가 발생하는 등 유동현상이 매우 복잡해진다. 이와 같은 2차원 압축기 익력 성능예측을 위하여 압축성, 비압축성 수치해석기법 및 난류 모델을 DCA(doble circular arc) 아음속 압축기 익렬에 적용하여 실험 결과와 비교 검토하였다.

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A Study of the Gas Flow through a LNG Safety Valve (LNG 안전밸브를 지나는 기체 유동에 관한 연구)

  • Lee, Jun-Hee;Kim, Heuy-Dong
    • Journal of the Korean Society of Propulsion Engineers
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    • v.11 no.4
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    • pp.19-25
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    • 2007
  • A LNG safety valve functions to control a constant pressure inside the LNG line of transportation, and the flow through it accompanies with noise and vibration which affect adversely on the system. The present study aims at understanding the flow physics of LNG safety valve for a practical design of LNG safety valve. A computational work using the two-dimensional, axisymmetric, compressible, Navier-Stokes equations is carried out to simulate the gas flow through the LNG safety valve, and compared with the theoretical results. It is found that the shape of valve sheet and the gap size are the key parameters in determining the gas dynamic forces on the valve sheet, and there exists a distance between nozzle exit and valve sheet in which the thrust coefficient at the valve sheet increases abruptly.

DEVELOPMENT OF A ROBUST MESHLESS METHOD FOR 2-D COMPRESSIBLE FLOW (2차원 압축성 유동 해석을 위한 강건한 무격자 해석기법 개발)

  • Huh, J.Y.;Rhee, J.S.;Kim, K.H.;Jung, S.Y.
    • Journal of computational fluids engineering
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    • v.19 no.3
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    • pp.85-90
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    • 2014
  • The purpose of this study is to develop a new Meshless Method to solve 2-D compressible flow problems numerically. This paper includes a revised Least Square method that improves robustness compared with its original version by removing excessive numerical oscillation which occurs when points are randomly distributed. Numerical analyses of hypersonic flow over a blunt body were carried out using the method, then robustness, accuracy and convergence of their results were compared with those obtained from the original method.

GAS-LIQUID TWO-PHASE HOMOGENEOUS MODEL FOR CAVITATING FLOW -Part II. HIGH SPEED FLOW PHENOMENA IN GAS-LIQUID TWO-PHASE MEDIA (캐비테이션 유동해석을 위한 기- 2상 국소균질 모델 -제2보: 기-액 2상 매체중의 고속유동현상)

  • Shin, B.R.;Park, S.;Rhee, S.H.
    • Journal of computational fluids engineering
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    • v.19 no.3
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    • pp.91-97
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    • 2014
  • A high resolution numerical method aimed at solving cavitating flow was proposed and applied to gas-liquid two-phase shock tube problem with arbitrary void fraction. The present method with compressibility effects employs a finite-difference 4th-order Runge-Kutta method and Roe's flux difference splitting approximation with the MUSCL TVD scheme. The Jacobian matrix from the inviscid flux of constitute equation is diagonalized analytically and the speed of sound for the two-phase media is derived by eigenvalues. So that the present method is appropriate for the extension of high order upwind schemes based on the characteristic theory. By this method, a Riemann problem for Euler equations of one dimensional shock tube was computed. Numerical results of high speed flow phenomena such as detailed observations of shock and expansion wave propagations through the gas-liquid two-phase media and some data related to computational efficiency are made. Comparisons of predicted results and solutions at isothermal condition are provided and discussed.

Condensation processes in transonic two-phase flows of saturated humid air using a small-disturbance model (미교란 모델을 이용한 포화 습공기 천음속 2상 유동에서의 응축현상)

  • Lee, Jang-Chang;Zvi Rusak
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.31 no.6
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    • pp.23-29
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    • 2003
  • Transonic two-phase flow of Saturated humid air, in which relative humidity is 100%, with various condensation processes around thin airfoils is investigated. The study uses an extended transonic small-disturbance(TSD) model of Rusak and Lee [11, 12] which includes effects of heat addition to the flow due to condensation. Two possible limit types of condensation processes are considered. In the nonequilibrium and homogeneous process, the condensate mass fraction is calculated according to classical nucleation and droplet growth rate models. In the equilibrium process, the condensate mass fraction is calculated by assuming an isentropic process. The flow and condensation equations are solved numerical1y by iterative computations. Results under same upstream conditions describe the flow structure, field of condensate, and pressure distribution on airfoil's surfaces. It is found that flow characteristics, such as position and strength of shock waves and airfoil’s pressure distribution, are different for the two condensation processes. Yet, in each case, heat addition as a result of condensation causes significant changes in flow behavior and affects the aerodynamic performance of airfoils.

In-situ 법으로 제조한 $Al/TiC_p$ 복합재료의 열간가공성

  • Kim, Su-Hyeon;Jo, Yeong-Hui;Lee, Jeong-Mu;Choe, Seung-Hwa
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2012.05a
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    • pp.103.2-103.2
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    • 2012
  • 알루미늄기지 복합재료는 낮은 밀도, 높은 비강도, 우수한 강성을 가지고 있어서 수송기기용 경량소재로서 적용 가능하다. 강화재를 외부에서 주입하는 ex-situ 법에 비하여 화학반응에 의하여 강화상이 생성되는 in-situ 법은 기지와 강화상의 계면 특성이 우수하다. In-situ 주조법으로 제조한 알루미늄기지 복합재료는 여러 형태로 가공하기 위하여 압출, 열간압연 등의 공정을 거치게 되므로 열간가공성에 대한 이해가 필요하다. 이 연구에서는 고온압축시험을 이용하여 in-situ $Al/TiC_p$ 복합재료의 열간가공성을 평가하였다. 고온유동곡선으로부터 변형률속도민감도를 구하였으며 Dynamic Material Model을 이용하여 efficiency of power dissipation을 표현하는 공정지도를 작성하였다. 또한 변형 조건에 따른 미세조직 발달 거동을 조사하였으며 이로부터 각 변형 구간에 대한 변형기구를 도출하였다. 이로부터 알루미늄기지 복합재료의 열간가공성에 미치는 강화상의 영향을 고찰하였다.

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