• 제목/요약/키워드: Numerical Loss

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버터플라이 벨브 주위의 비압축성 및 압축성유동 특성에 대한 수치해석 (Numerical Analysis of Incompressible and Compressible Flow Around a Butterfly Valve)

  • 이종욱;이두환;최윤호
    • 에너지공학
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    • 제11권1호
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    • pp.26-33
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    • 2002
  • 본 연구에서는 butterfly valve주위의 비압축성 및 압축성유동 특성을 수치해석을 통하여 조사하였다. 밸브는 문제를 단순화시키기 위하여 평판 디스크로 간주하였으며, 다양한 디스크 각도 및 압력비 변화에 대한 계산을 수행하였다. 각도가 증가함에 따라 디스크 상류면의 정체점은 디스크의 중심으로 이동하는 것을 볼 수 있었고, 입구공기의 유입 속도는 감소함을 볼 수 있었다. 최고 유속은 디스크와 벽면사이에 형성되는 vena contracta 효과에 의해 생기는 목의 하류에서 형성됨을 볼 수 있었다. 압력비를 감소함에 따라 압축성 효과는 증대되며 유동이 초음속화 되면서 생성되는 강한 wall jet에 의해 shock cell structure가 형성되는 것을 볼 수 있었다. 입구유량은 디스크 각도와 압력비의 증가에 따라서 감소하며, 압력손실계수는 디스크 각도의 증가 및 압력비의 감소에 따라 증가하였다.

시분해 레이저 유도 백열법을 이용한 매연 입자 크기에 관한 수치적 연구 (Numerical Investigation on Soot Primary Particle Size Using Time Resolved Laser Induced Incandescence (TIRE-LII))

  • 이종호;김정용;정동수;장영준;전충환
    • 대한기계학회논문집B
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    • 제29권9호
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    • pp.1022-1031
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    • 2005
  • Temporal behavior of the laser induced incandescence (LII) signal is often used for soot particle sizing, which is possible because the cooling behavior of a laser heated particle is dependent on the particle size. In present study, LII signals of soot particles are modeled using two non-linear coupled differential equations deduced from the energy- and mass-balance of the process. The objective of this study is to obtain an appropriate calibration curve for determining primary particle size by comparing the gated signal ratio and double-exponential curve fitting methods. Not only the effects of laser fluence and gas temperature on the cooling behavior but also heat transfer mechanisms of heated soot particle have been investigated. The second-order exponential curve fitting showed better agreements with the LII signals than the gated signal ratio method which was based on the lust-order exponential curve fit. And the temporal decay rate of the LII signal and primary particle size showed nearly linear relationship, which was little dependent on the laser fluence. And it also could be reconfirmed that vaporization was dominant process of heat loss during first loons after laser pulse, then heat conduction played most important role while thermal radiation had little influence all the time.

측 추력 제트가 미사일의 공력특성에 미치는 영향에 관한 연구 : Part I. 제트 유동특성 영향 (Numerical Investigation of the Lateral Jet Effect on the Aerodynamic Characteristics of the Missile: Part I. Jet Flow Condition Effect)

  • 민병영;이재우;변영환;현재수;김상호
    • 한국항공우주학회지
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    • 제32권8호
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    • pp.64-71
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    • 2004
  • 측 추력(Lateral Jet)을 이용하여 자세를 제어하는 미사일 주위의 초음속 유동장 해석을 위하여 삼차원 Navier-Stokes 코드 (AADL3D)를 개발하고, 이를 이용한 수치해석 연구를 수행하였다. 분출 제트 압력, 분출 마하수 등을 포함하는 제트의 유동특성이 미사일에 미치는 수직력 및 피칭모멘트에 대한 영향을 알아보기 위한 사례연구를 수행하였으며, 공력 해석 결과 제트의 분출 압력과 분출 마하수 변화에 따른 서로 다른 수직력과 모멘트 변화 양상 및 그 원인을 확인할 수 있었다. 또한 대부분의 수직력 손실과 피칭모멘트 발생은 노즐 후방의 저압영역에 의한 것이며, 동일한 제트 추력일지라도 분출 마하수가 큰 경우가 분출 압력이 큰 경우보다 모멘트 발생 최소화에 유리함을 확인하였다.

GIS기반 폭풍해일 시각화를 통한 웹 서비스 시스템 구축 (Web Service System for GIS-based Storm-surge Visualization)

  • 김진아;박광순;권재일
    • 한국HCI학회:학술대회논문집
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    • 한국HCI학회 2009년도 학술대회
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    • pp.611-614
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    • 2009
  • 최근 지구온난화로 인한 기후변화 및 해수면 상승으로 인한 태풍의 내습빈도 및 강도의 증가로 태풍 내습시 연안지역에서 침수 범람과 같은 자연재해로 인한 국민의 인명과 재산 피해가 급증하고 있다. 이에 폭풍 해일 예측을 위한 수치모델의 수립과 개선을 통하여 태풍으로 인해 발생하는 연안지역에서의 해일의 발생시간, 해일의 높이, 해일로 인한 침수 범람 지역을 보다 과학적으로 정확하게 예측하는 연구가 활발히 진행되고 있다. 따라서 본 논문에서는 이러한 예측결과를 일반 국민들에게 보다 효과적으로 전달하고, 폭풍 해일로 인한 침수 범람과 같은 연안재해로 인한 피해를 예방하기 위하여 웹 서비스를 통한 GIS기반 폭풍 해일 시각화 시스템을 개발하였다. 또한 수치모델의 정확한 예측결과 및 연안지역의 정밀 지리정보 구축을 위하여 LiDAR 자료를 이용한 GIS기반 육도-해도 접합을 통한 연안지역의 수 센티미터 해상도의 상세 지리정보를 DEM을 통하여 시각화하였다.

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Analysis and Correction of Through-bolt End-region Overheating and Breakdown Failure in a Large Tubular Hydro-generator

  • Zhou, Zhi-ting;Fan, Zhen-nan;Li, Jian-fu;Wen, Kun;Zhang, Bide;Wang, Tao;Xia, Yan-kun;Sun, Zhang;Yao, Bing
    • Journal of Electrical Engineering and Technology
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    • 제13권6호
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    • pp.2292-2300
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    • 2018
  • A field-circuit coupling model of a typical faulty generator is established to correct through-bolt end-region overheating and breakdown failure in a tubular hydro-generator. Using the model, eddy current loss and electromagnetic forces on through bolts under normal and failure conditions are analyzed and compared and the natural frequency of a through bolt is determined. Based on the analysis results, the causative mechanism of failure is revealed and targeted improvement design measures are proposed. The numerical results are found to be consistent with the actual fault characteristics, validating the design measure improvements. The results are useful in improving the design and manufacturing standards and enhancing the operational reliability of large tubular hydro-generators.

원자로배수탱크내 Sparger에 대한 유동특성 및 최적설계 (Flow Characteristics and Optimal Design for RDT Sparger)

  • 김광추;박만홍;박경식;이종원
    • 대한기계학회논문집B
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    • 제23권11호
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    • pp.1390-1398
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    • 1999
  • A numerical analysis for ROT sparger of PWR(Pressurized Water Reactor) is carried out. Computation is performed to investigate the flow characteristics as the change of design factor. As the result of this study, RDT sparger's flow resistance coefficient is K=3.53 at the present design condition if engineering mar&in is considered with 20%, and flow ratio into branch pipe is $Q_s/Q_i=0.41$. Velocity distribution at exit is not uniform because of separation in branch pipe. In the change of inlet flow rate and section area ratio of branch pipe for main pipe, flow resistance coefficient is increased as $Q_s/Q_i$ decreasing, but in the change of branch angle and outlet nozzle diameter of main pipe, flow resistance coefficient is decreased as $Q_s/Q_i$ decreasing. As the change rate of $Q_s/Q_i$ is the larger, the change rate of flow resistance coefficient is the larger. The change rate of pressure loss is the largest change as section area ratio changing. The optimal design condition of sparger is estimated as the outlet nozzle diameter ratio of main pipe is $D_s/D_i=0.333$, the section area ratio is $A_s/A_i=0.2$ and the branch angle is ${\alpha}=55^{\circ}$.

미세 그루브가 있는 무한폭 Slider 베어링의 윤활해석: 제1보 - 그루브 위치의 영향 (Lubrication Analysis of Infinite Width Slider Bearing with a Micro-Groove: Part 1 - Effect of Groove Position)

  • 박태조;장인규
    • Tribology and Lubricants
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    • 제35권6호
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    • pp.376-381
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    • 2019
  • Surface texturing is widely applied to reduce friction and improve the reliability of machine elements. Despite extensive theoretical studies to date, most research has been limited to parallel thrust bearings, mechanical face seals, piston rings, etc. However, most sliding bearings have a convergent film shape in the sliding direction and the hydrodynamic pressure is mainly generated by the wedge action. The results of surface texturing on inclined slider bearings are largely insufficient. This paper is the first part of a recent study focusing on the effect of the groove position on the lubrication performances of inclined slider bearings. We model a slider bearing with one rectangular groove on a fixed pad and analyze the continuity and Navier-Stokes equations using a commercial computational fluid dynamics (CFD) code, FLUENT. The results show that the film convergence ratio and the groove position have a significant influence on the pressure and velocity distributions. There are groove positions to maximize the supporting load with the film convergence ratio and the groove reduces the frictional force acting on the slider. Therefore, the proper groove position not only improves the load-carrying capacity of the slider bearings but also reduces its frictional loss. The present results apply to various surface-textured sliding bearings and can lead to further studies.

가변 피치형 수평축 풍력 터빈의 공력 최적설계 및 피치제어 성능 연구 (Optimal Aerodynamic Design and Performance Analysis for Pitch-Controlled HAWT)

  • 유기완
    • 한국항공우주학회지
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    • 제35권10호
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    • pp.891-898
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    • 2007
  • 피치 제어형 수평축 풍력터빈에 대한 공력최적 설계 형상과 피치 변화에 따른 공력 성능 특성을 수치적으로 계산하였다. 수치적 방법은 날개 요소이론을 적용하였으며, Prandtl의 팁 손실 효과, 에어포일의 분포 효과, 후류의 회전 효과 등을 고려하였다. 블레이드 설계에는 총 6개의 서로 다른 에어포일을 사용하였으며, 구조적 강성을 갖기 위해서 허브 측에는 최대 40% 두께비의 에어포일을 분포시켰다. 최적 설계에서 얻어진 비선형 코드 길이는 제작성과 무게 등을 고려하여 선형화 시켰고, 선형화에 따른 공력성능 변화는 무시할만하다는 결과를 얻어내었다. 피치각 변화에 따른 동력성능, 추력성능, 토크 성능 곡선을 비교한 결과 $3^{\circ}$의 피치각 변화에도 민감한 공력 값의 변동이 생김을 알 수 있었고, 정밀한 피치 제어를 위한 각도 제어는 증분이 $3^{\circ}$보다 작은 값으로 피치 제어 알고리즘과 피치 구동 장치가 필요함을 알 수 있었다. 또한 최대 토크는 설계속도비보다 작은 속도비에서 발생되는 결과를 보여주었다.

EFFECT OF VALVE TIMING AND LIFT ON FLOW AND MIXING CHARACTERISTICS OF A CAI ENGINE

  • Kim, J.N.;Kim, H.Y.;Yoon, S.S.;Sa, S.D.;Kim, W.T.
    • International Journal of Automotive Technology
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    • 제8권6호
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    • pp.687-696
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    • 2007
  • To increase the reliability of auto-ignition in CAI engines, the thermodynamic properties of intake flow is often controlled using recycled exhaust gases, called internal EGR. Because of the internal EGR influence on the overall thermodynamic properties and mixing quality of the gases that affect the subsequent combustion behavior, optimizing the intake and exhaust valve timing for the EGR is important to achieve the reliable auto-ignition and high thermal efficiency. In the present study, fully 3D numerical simulations were carried out to predict the mixing characteristics and flow field inside the cylinder as a function of valve timing. The 3D unsteady Eulerian-Lagrangian two-phase model was used to account for the interaction between the intake air and remaining internal EGR during the under-lap operation while varying three major parameters: the intake valve(IV) and exhaust valve(EV) timings and intake valve lift(IVL). Computational results showed that the largest EVC retardation, as in A6, yielded the optimal mixing of both EGR and fuel. The IV timing had little effect on the mixing quality. However, the IV timing variation caused backflow from the cylinder to the intake port. With respect to reduction of heat loss due to backflow, the case in B6 was considered to present the optimal operating condition. With the variation of the intake valve lift, the A1 case yielded the minimum amount of backflow. The best mixing was delivered when the lift height was at a minimum of 2 mm.

Simulation of Debris Flow Deposit in Mt. Umyeon

  • Won, Sangyeon;Kim, Gihong
    • 한국측량학회지
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    • 제33권6호
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    • pp.507-516
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    • 2015
  • Debris flow is a representative natural disaster in Korea and occurs frequently every year. Recently, it has caused considerable damage to property and considerable loss of life in both mountainous and urban regions. Therefore, It is necessary to estimate the scope of damage for a large area in order to predict the debris flow. A response model such as the random walk model(RWM) can be used as a useful tool instead of a physics-based numerical model. RWM is a probability model that simplifies both debris flows and sedimentation characteristics as a factor of slopes for a subjective site and represents a relatively simple calculation method compared to other debris flow behavior calculation models. Although RWM can be used to analyzing and predicting the scope of damage caused by a debris flow, input variables for terrain conditions are yet to be determined. In this study, optimal input variables were estimated using DEM generated from the Aerial Photograph and LiDAR data of Mt. Umyeon, Seoul, where a large-scale debris flow occurred in 2011. Further, the deposition volume resulting from the debris flow was predicted using the input variables for a specific area in which the deposition volume could not be calculated because of work restoration and the passage of time even though a debris flow occurred there. The accuracy of the model was verified by comparing the result of predicting the deposition volume in the debris flow with the result obtained from a debris flow behavior analysis model, Debris 2D.