• 제목/요약/키워드: Vortex Flow

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V-gutter 형 보염기를 장착한 모델 램제트 연소기의 화염 특성 및 연소 불안정 연구 (A Study on Flame Dynamics and Combustion Instability Stabilized with a V-gutter Type Flameholder in a model ramjet combustor)

  • 송진관;황정재;송재천;윤영빈
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년도 제31회 추계학술대회논문집
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    • pp.447-448
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    • 2008
  • The goal of this study is to find flame dynamic behavior using a transverse fuel injection in a model combustor, and is to investigate main causes of unstable combustion in a liquid-fueled combustor. For transverse fuel injection into air cross flow, spray result shows similar tendency with Wu et al.[1998] until spray arrives at flame-holder. However, passing through flame-holder, fuel inflow into recirculation region of flameholder is not sufficient so it makes large difference between shear flame and recirculation flame behind flameholder. In combustion tests, the stable flame shows a kind of shear flames and low peaks of dynamic pressure frequencies. On the other hand, unstable flame shows periodic detached flame in recirculation zone and a strong peak of dynamic pressure frequency. The instability frequency is highly affected by influx air velocity, air temperature, equivalence ratio and wake or vortex shedding frequency behind the flameholder.

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Numerical modelling for evaluating the TMD performance in an industrial chimney

  • Iban, A.L.;Brownjohn, J.M.W.;Belver, A.V.;Lopez-Reyes, P.M.;Koo, K.
    • Wind and Structures
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    • 제17권3호
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    • pp.263-274
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    • 2013
  • A numerical technique for fluid-structure interaction, which is based on the finite element method (FEM) and computational fluid dynamics (CFD), was developed for application to an industrial chimney equipped with a pendulum tuned mass damper (TMD). In order to solve the structural problem, a one-dimensional beam model (Navier-Bernoulli) was considered and, for the dynamical problem, the standard second-order Newmark method was used. Navier-Stokes equations for incompressible flow are solved in several horizontal planes to determine the pressure in the boundary of the corresponding cross-section of the chimney. Forces per unit length were obtained by integrating the pressure and are introduced in the structure using standard FEM interpolation techniques. For the fluid problem, a fractional step scheme based on a second order pressure splitting has been used. In each fluid plane, the displacements have been taken into account considering an Arbitrary Lagrangian Eulerian approach. The stabilization of convection and diffusion terms is achieved by means of quasi-static orthogonal subscales. For each period of time, the fluid problem was solved and the geometry of the mesh of each fluid plane is updated according to the structure displacements. Using this technique, along-wind and across-wind effects have been properly explained. The method was applied to an industrial chimney in three scenarios (with or without TMD and for different damping values) and for two wind speeds, showing different responses.

발사초기 단계에서 발사체의 마하수, 받음각 및 노즐 효과에 따른 공력특성 연구 (Study on Aerodynamic Characteristics of a Launch Vehicle with Mach Number, Angle of Attack and Nozzle Effect at Initial Stage)

  • 정태건;김성초;최종욱
    • 한국가시화정보학회지
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    • 제17권1호
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    • pp.34-42
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    • 2019
  • Aerodynamic characteristics for a launch vehicle are numerically analyzed with various conditions. The local drag coefficients are high at the nose of the launch vehicle in subsonic region and on the main body in supersonic region because of the induced drag and the wave drag, respectively. The drag coefficients show the similar trend with the angle of attack except zero degree. However, the more the angle of attack increases, the more dependent on the Mach number the lift coefficient is. The body rotation for the flight stability destroys the vortex pair formed above the body opposite to the flight direction, so the flow fields are more or less complicated. The drag coefficient of the launch vehicle at sea level is about three times larger than that at altitude 7.2 km. And the thrust jet at the nozzle causes to reduce the drag coefficient compared with the jetless transonic flight.

Experimental and numerical investigation of a surface-fixed horizontal porous wave barrier

  • Poguluri, Sunny Kumar;Kim, Jeongrok;George, Arun;Cho, I.H.
    • Ocean Systems Engineering
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    • 제11권1호
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    • pp.1-16
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    • 2021
  • Experimental and numerical investigations were conducted to study the performance of a surface-fixed horizontal porous wave barrier in regular waves. The characteristics of the reflection and transmission coefficients, energy dissipation, and vertical wave force were examined versus different porosities of the barrier. Numerical simulations based on 3D Reynolds Averaged Navier-Stokes equations with standard low-Re k-ε turbulent closure and volume of fluid approach were accomplished and compared with the experimental results conducted in a 2D wave tank. Experimental measurements and numerical simulations were shown to be in satisfactory agreement. The qualitative wave behavior propagating over a horizontal porous barrier such as wave run-up, wave breaking, air entrapment, jet flow, and vortex generation was reproduced by CFD computation. Through the discrete harmonic decomposition of the vertical wave force on a wave barrier, the nonlinear characteristics were revealed quantitatively. It was concluded that the surface-fixed horizontal barrier is more effective in dissipating wave energy in the short wave period region and more energy conversion was observed from the first harmonic to higher harmonics with the increase of porosity. The present numerical approach will provide a predictive tool for an accurate and efficient design of the surface-fixed horizontal porous wave barrier.

Parametric studies on sloshing in a three-dimensional prismatic tank with different water depths, excitation frequencies, and baffle heights by a Cartesian grid method

  • Jin, Qiu;Xin, Jianjian;Shi, Fulong;Shi, Fan
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제13권1호
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    • pp.691-706
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    • 2021
  • This paper aims to numerically investigate violent sloshing in a partially filled three-dimensional (3D) prismatic tank with or without a baffle, further to clarify the suppressing performance of the baffle and the damping mechanism of sloshing. The numerical model is based on a Cartesian grid multiphase flow method, and it is well validated by nonlinear sloshing in a 3D rectangular tank with a vertical baffle. Then, sloshing in an unbaffled and baffled prismatic tank is parametrically studied. The effects of chamfered walls on the resonance frequency and the impact pressure are analyzed. The resonance frequencies for the baffled prismatic tank under different water depths and baffle heights are identified. Moreover, we investigated the effects of the baffle on the impact pressure and the free surface elevation. Further, the free surface elevation, pressure and vortex contours are analyzed to clarify the damping mechanism between the baffle and the fluid.

경사충격파 박리유동 제어를 위한 초음속 진동제트 분출위치의 영향성 연구 (A Study of the Influence of the Injection Location of Supersonic Sweeping Jet for the Control of Shock-Induced Separation)

  • 박상훈;이열
    • 한국항공우주학회지
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    • 제50권11호
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    • pp.747-754
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    • 2022
  • 유체진동기에서 분출되는 초음속 진동제트를 이용하여 충격파에 의한 경계층 박리유동을 제어하는 실험적 연구가 이루어졌다. 유체진동기의 위치와 제어압력의 변화가 경사충격파에 의하여 발생되는 경계층 박리유동의 특성에 미치는 영향이 관찰되었고, 이를 위하여 고속 슐리렌, 표면유동가시화, 벽압력 측정, 그리고 정밀 피토관 측정 기법이 적용되었다. 본 연구의 초음속 진동제트의 박리유동 제어 특성은 공기제트 와류를 이용한 기존 제어기법과 정량적으로 비교 분석되었다.

에어-오일 냉각방식에 의한 고경도재료의 선삭 (Turning of Hardened Materials Using the Air-oil Cooling System)

  • 정보구;고태조;김희술
    • 한국정밀공학회지
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    • 제14권8호
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    • pp.73-81
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    • 1997
  • The hard turning process defined as a single point turning of materials harder than $H_{R}$C 58 differs from conventional turning because of hardness of the work materials and cutting toos needed in the process. In hard turning, tool life is very short, of the order of a few minutes, during which the cutting tool is subjected to the extremes of stress and temperature. In this regard, it is well known that CBN tool is proper for this process in spite of expensive cost. In this research, we studied the feasibility of the use of the low cost cutting tool such as a aTiN coated tool. To this end, a new cooling system was designed with an air-oil method for reducing tool temperature, which is based on the principle of air vortex flow. That is, the outlet temperature of the air becomes aver 20 .deg. C lower than atmosphere temperature by entering pressurized air of 5kgf/c $m^{2}$ into the inlet. This cooled air ejected to the top of the cutting tool lowered tool temperature, which reduced the wear of a TiN coated tool by the 30% of CBN tool life with respect to the same cutting length.h.

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벽면에 근처에 놓인 정방형주의 수평 분리판에 의한 유동 제어 (The Flow Control by a Horizontal Splitter Plate for a Square Prism near a Wall)

  • 노기덕;이상준;이경윤;장재동;정용길
    • Journal of Advanced Marine Engineering and Technology
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    • 제35권5호
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    • pp.625-631
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    • 2011
  • 본 연구는 벽면근처에 놓인 정방형주의 모서리에 수평 분할판을 부착하여 유체력 제어 효과를 양항력 측정실험 및 PIV에 의한 가시화 실험으로 조사한 것이다. 분할판의 폭은 정방형주 폭의 10% 로 했다. 실험변수로서는 수평 분할판의 부착 위치 및 벽면과 사각주 사이의 간격으로 하였으며, 그 결과를 요약하면 다음과 같다. 간격비 0.4 이상에서 벽면과 정방형주 사이에 흐름이 명확했고, 후류측 칼만 와도 뚜렷이 나타났다. 원형의 정방형주는 간격비 0.4에서 수평 분할판을 가진 정방형주는 간격비 0.6에서 평균양력계수 및 Strouhal 수의 변곡점이 나타났다. 정방형주 아랫면의 뒷 모서리에 수평 분할판을 설치한 경우 항력이 감소하였으며 각 간격비 평균 4.5%의 항력 저감 효과를 얻었다. 이 경우 정방형주 윗면 박리영역의 크기는 분할판이 없는 정방형주에 비해 작았다.

저속(低速) 전.후진(前.後進) 조종(操縱)에 의한 동유체력(動流體力)의 수학(數學)모델 (Mathematical Model for the Hydrodynamic Forces in Forward or Backward Low Speed Maneuvering)

  • 김진안;이승건
    • 대한조선학회논문집
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    • 제29권3호
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    • pp.45-52
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    • 1992
  • 조종운동(操縱運動)의 정확(正確)한 예측(豫測)이 절실(切實)하게 요구되는 항만내(港灣內)에서의 조종운동(操縱運動)과 같이, 저속(低速)이며 또 천수역(淺水域)에서의 선박(船舶)의 조종운동(操縱運動)을 잘 표현(表現)하는 수학(數學) Model은 아직 얻어지지 않고 있는 것이 현재까지의 실정(實情)이라 할 것이다. 일본의 Kose는 저속시(低速時) 선체유체력(船體流體力)의 새로운 Model을 제안(提案)한 바 있으나 아직 그 유용성에 대해서는 다방면(多方面)에서 검토(檢討)가 필요(必要)하다고 할 것이다. 본(本) 논문(論文)은 이러한 현실(現實)에서, 우선 저속시(低速時)의 Hull 유체력(流體力)을 잘 표현(表現)할 수 있는 새로운 방법(方法)을 모색하여 이를 Kose의 Model이나 종래(從來)의 M.M.G.Model 또는 Cross-Flow Drag Model등과 비교하여, 저속시(低速時)의 선체(船體)에 작용(作用)하는 유체력(流體力)을 잘 나타낼 수 있는 Model을 개발하려고 한다. 수학(數學) Model의 우열(優劣)을 판정하는 방법으로서는, 일본의 RR-742부회(部會)에서 실험한 저속시(低速時)($f_n={\pm}0.06,\;U={\pm}0.3m/s$)의 전후진(前後進)에 대한 Bare Hull의 CMT결과로 얻어진 전후력, 횡력, 선회모멘트를 Data로 삼아 이들을 각각 Kose Model, Cross-flow Model, MMG Model 및 신(新) Model에 의하여 Fitting하고, Fitting의 표준편차(標準偏差)를 비교하였다.

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$CO_2$ 소화제 노즐 분사각 및 분사속도가 $CO_2$ 농도분포특성에 미치는 영향에 관한 수치적 연구 (A Numerical Simulation of the Effect of the Injection Angle and Velocity of the $CO_2$ Agent Nozzle on the Characteristics of $CO_2$ Concentration Distribution)

  • 박찬수
    • 한국화재소방학회논문지
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    • 제20권2호
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    • pp.44-53
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    • 2006
  • 선박에 설치되는 고정식 $CO_2$ 소화장치의 구성요소 중 하나인 $CO_2$ 소화제분사노즐의 분사각과 분사속도가 유동 및 $CO_2$ 농도분포특성에 미치는 영향을 분석하기 위하여 전산모의실험을 2차원 비정상상태로 수행하였다. 유동장과 $CO_2$ 소화제 농도장을 계산하여 분석하였다. 소화제 분사노즐의 조건에 따라 유동형태의 상이성을 확인할 수 있었으며, 모든 소화제 분사노즐조건에서 와류가 형성되는 영역으로부터 주위로 등농도선대가 확장됨을 알 수 있었다. 소화제 분사노즐각에 따라 계산영역의 밑바닥면을 따르는 벽면제트기류의 강도가 다르게 나타났고, 등농도선대가 확장 또는 축소됨을 예측 가능하였다. $CO_2$ 소화제 분사유량을 일정하게 유지한 상태에서 소화제 분사속도를 증가시키는 것이 감소시키는 것 보다 더 높은 $CO_2$ 등농도선대가 밑바닥면 상에 형성될 것으로 예측되었다.