• Title/Summary/Keyword: 직접수치모사

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Prediction of Thermal Expansion Coefficients for Fiber-Reinforced Composites by Direct Numerical Simulation (직접 수치 모사법을 이용한 섬유 강화 복합재료의 열팽창계수 예측)

  • Nam, Youn-Sic;Oh, Min-Hwan;Kim, Kwang-Sik;Cho, Jin-Yeon
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.35 no.9
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    • pp.771-777
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    • 2007
  • In this paper, thermal expansion coefficients of fiber-reinforced composite materials are predicted by direct numerical simulation. From comparing the predicted results with experimental results, it is confirmed that direct numerical simulation gives similar results to the previously proposed methods while minimizing artificial assumptions. Additionally trend of variation in thermal expansion coefficients is investigated according to the fiber volume fraction.

Monte Carlo 모사, 그리고 분자동역학

  • 유동훈;이진호
    • Journal of the KSME
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    • v.44 no.3
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    • pp.55-63
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    • 2004
  • 이 글에서는 마이크로와 나노스케일의 해석에 사용하는 수치모사 방법인 직접모사 몬테 카를로 (Direct Simulation Monte Carlo : DSMC)방법과 분자동역학(Molecular Dynamics: MD)과이 관계에 대하여 설명한다.

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Comparison of FDDO and DSMC Methods in the Analysis of Expanding Rarefied Flows (팽창희박류의 분석에 있어서 FDDO와 직접모사법의 비교)

  • Chung C. H.
    • Journal of computational fluids engineering
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    • v.1 no.1
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    • pp.142-149
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    • 1996
  • 이차원 노즐을 통하여 저밀도 환경으로 팽창하는 희박류의 분석에 있어서 불연속좌표법과 결합된 유한차분법(finite-difference method coupled with the discrete-ordinate method, FDDO)과 직접모사법(direct-simulation Monte-Carlo method, DSMC)이 비교되었다. FDDO를 이용한 분석에서는 충돌적분모델을 도입하여 간단해진 볼츠만식(Boltzmann equation)이 불연속좌표법을 이용하여 물리적 공간에서는 연속이나 분자속도 공간에서는 불연속좌표로 표시되는 편미분방정식군으로 변환되어 유한차분법에의하여 수치해석 되었다. 직접모사법에서는 분자모델로 가변강구모델(variable hard sphere model, VHS)이, 충돌샘플링모델로는 비시계수법(no time counter method, NTC)이 채택되었다. 전혀 다른 두 가지 방법에 의한 노즐 내부에서의 유체흐름 해석결과는 매우 잘 일치하였으며, 노즐 외부의 plume 영역에서는 FDDO에 의한 해석결과가 직접모사법에 의한 해석결과에 비하여 약간 느린 팽창을 보였다.

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DNS of Drag-Reduced Turbulent Channel Flow due to Polymer Additives (폴리머 첨가제에 의한 항력감소 난류 채널 유동장의 직접수치모사)

  • Kim, Kyoung-Youn
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.34 no.8
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    • pp.799-807
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    • 2010
  • Direct numerical simulations (DNS) of turbulent channel flow for which the drag is reduced by using polymer additives have been performed by a pseudo-spectral method. The Reynolds number based on the friction velocity and half-channel height is 395, and the polymeric stresses due to the polymer additives are evaluated using the FENE-P (finitely extensible nonlinear elastic-Peterlin) model. The numerical results show that the drag reduction rate is significantly affected by the parameters used in the FENE-P model, such as the maximum extensibility and relaxation time of the polymer molecules. The turbulence data for both low- and high-drag reduction regimes are analyzed. In addition, the effects of FENE-P model parameters on the flow characteristics have been investigated for the same drag reduction rate due to the polymer additives. Finally, the present DNS results have been used to verify the correlation between rheological parameters and the extent of drag reduction, which was suggested by Li et al. (2006).

저궤도 상에서의 Ashen light 관측을 통한 통합적 광선 추적 수치 모사

  • Yu, Jin-Hui;Ryu, Dong-Ok;Kim, Seok-Hwan
    • Bulletin of the Korean Space Science Society
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    • 2010.04a
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    • pp.26.2-26.2
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    • 2010
  • 이 연구는 Ashen light 측정을 통해 전 지구 반사율을 구하는 통합적 광선 추적 모델을 구성하고 그 수치모사 성능을 검증하는데 목적을 두고 있다. 통합적 광선 추적 모델은 태양-지구-달 시스템에 대하여 태양 복사에너지의 광경로를 추적함으로써 최종적으로 저궤도 상에 존재하는 광학계에 도달하는 Ashen light과 moonshine의 조도를 수치 모사하는 기법이다. Ashen light은 구형의 태양에서 출발한 $1.626\times10^{26}W$의 에너지를 가지는 400nm에서 700nm 파장대역의 빛이 램버시안 특성을 지니는 구형의 지구에서 반사된 후 램버시안 특성을 가지는 구형의 달에서 재 반사되어 저궤도상의 광학계로 입사하는 빛이고, moonshine은 달에서 직접 반사되어 저궤도상의 광학계로 입사하는 빛이다. 통합적 광선 추적 수치 모사를 이용하여 구한 Ashen light과 moonshine의 조도는 1차 근사 해석적 방법을 이용한 계산 결과와 측정 오차 범위 이내의 오차를 보였다. 최종 연구 결과 Ashen light과 moonshine의 조도를 이용하여 구한 지구 반사율과 1차 근사 해석적 방법을 이용한 지구 반사율 계산의 결과가 유사함을 증명하였다.

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Direct Numerical Simulation of Composite laminates Under low velocity Impact (저속충격을 받는 적층복합재료 평판의 직접 수치모사)

  • Ji, Kuk-Hyun;Kim, Seung-Jo
    • Composites Research
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    • v.19 no.1
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    • pp.1-8
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    • 2006
  • Prediction of damage caused by low-velocity impact in laminated composite plate is an important problem faced by designers using composites. Not only the inplane stresses but also the interlaminar normal and shear stresses playa role in estimating the damage caused. But it is well known that the conventional approach based on the homogenization has the limit in description of damage. The work reported here is an effort in getting better predictions of dynamic behavior and damage in composite plate using DNS approach. In the DNS model, we discretize the composite plates through separate modeling of fiber and matrix for the local microscopic analysis. In the view of microscopic mechanics with DNS model, interlaminar stress behaviors in the inside of composite materials are investigated and compared with the results of the homogenized model which has been used in the conventional approach to impact analysis. Also the multiscale model based on DNS concept is developed in order to enhance the effectiveness of impact analysis, and we present the results of multiscale analysis considering micro and macro structures simultaneously.

Direct Numerical Simulation of Turbulent Mixed Convection in Heated Vertical Annulus (수직 동심 환형관 내의 난류혼합대류 현상에 관한 직접수치모사)

  • Jun, Yong-Joon;Bae, Joong-Hun;Yoo, Jung-Yul
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.33 no.9
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    • pp.674-681
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    • 2009
  • Turbulent mixed convection in heated vertical annulus is investigated using Direct Numerical Simulation (DNS) technique. The objective of this study is to find out the effect of buoyancy on turbulent mixed convection in heated vertical annulus. Downward and upward flows with bulk Reynolds number 8500, based on hydraulic diameter and mean velocity, have been simulated to investigate turbulent mixed convection by gradually increasing the effect of buoyancy. With increased heat flux, heat transfer coefficient first decreases and then increases in the upward flow due to the effect of buoyancy, but it gradually increases in downward flow. The mean velocity and temperature profiles can not be explained by the wall log laws due to the effect of buoyancy, too. All simulation results are in good quantitative agreement with existing numerical results and in good qualitative agreement with existing experimental results.

Direct Numerical Simulation of Turbulent new Around a Rotating Circular Cylinder at Low Reynolds Number (회전하는 원형단면 실린더 주위의 저 레이놀즈수 난류유동에 대한 직접수치모사)

  • Hwang Jong-Yeon;Yang Kyung-Soo
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.29 no.10 s.241
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    • pp.1083-1091
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    • 2005
  • Turbulent flow around a rotating circular cylinder is investigated by Direct Numerical Simulation. The calculation is performed at three cases of low Reynolds number, Re=161, 348 and 623, based on the cylinder radius and friction velocity. Statistically strong similarities with fully developed channel flow are observed. Instantaneous flow visualization reveals that the turbulence length scale typically decreases as Reynolds number increases. Some insight into the spacial characteristics in conjunction with wave number is provided by wavelet analysis. The budget of dissipation rate as well as turbulent kinetic energy is computed and particular attention is given to the comparison with plane channel flow.

Drirect Numerical Simulation of Transitional Separated Flows Part I:Primary Instability (천이박리유동의 직접수치모사 Part I:주 불안정성)

  • Yang, Gyeong-Su
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.20 no.9
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    • pp.2965-2972
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    • 1996
  • Transitional flow in an obstructed channel is investigated using numerical simulation. Two-dimensional thin obstacles are mounted symmetrically in the vertical direction and periodically in the streamwise direction. Flow separation occurs at the tip of the sharp obstacles. Depending on the Reynolds number, the flow undergoes Hopf bifurcation as the primary instability leading to a two-dimensional unsteady periodic solution. At higher Reynolds numbers, the unsteady solution exhibits a symmetry-breaking bifurcation which results in an unsteady asymmetric solution. The results are compared with experiments currently available, and show a good agreement.