• 제목/요약/키워드: Flow oscillation

검색결과 509건 처리시간 0.026초

Sub-cavity를 이용한 초음속 cavity 유동의 피동제어에 대한 실험 및 수치해석적 연구 (Experimental/ Computational Study on the Passive Control of Supersonic Cavity Flow using a Sub-Cavity)

  • 임채민;이영기;김희동
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2007년도 제28회 춘계학술대회논문집
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    • pp.295-298
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    • 2007
  • 본 연구에서는 초음속 공동유동장에서 발생하는 압력변동을 저감하기 위한 피동제어방법의 유용성을 실험 및 수치해석적으로 조사하였다. 피동제어방법으로 사각 공동내 상류 벽면에 sub-cavity를 설치하였다. 공동내 하류벽면에 센서를 설치하여 압력변동 값을 실험적으로 측정하였으며, 측정된 압력변동값을 FFT변환하여 주파수 분석을 하였다. 수치계적으로는 공동내 압력변동 특성을 살펴보기 위해 3차원 비정상 Navier-Stokes 방정식에 유한체적법을 적용하여 유동장을 모사하였으며, 유동의 난류상태량들은 LES 방법을 사용하여 계산하였다. 본 연구에서 얻어진 결과는 다음과 같다. 공동유동에서 진동 특성은 공동 하류벽면에서 발생하는 압력진동에 의존한다. 특히 leading tip 두께와 sub-cavity 크기가 진동 저감효과에 주요 인자이다.

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채널유동에서 질량분사에 의한 표면유동의 진동 특성 (Oscillation Characteristics of Turbulent Channel Flow with Wall Blowing)

  • 나양;이창진
    • 한국항공우주학회지
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    • 제37권1호
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    • pp.62-68
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    • 2009
  • 하이브리드 로켓 연소에서 발생하는 산화제 난류 유동과 연료의 기화로 인한 분출유동 사이의 상호 간섭은 매우 복잡하고 특별한 유동 간섭을 일으킨다. 이를 연구하기 위하여 연소반응을 제외하고, 산화제의 난류 유동과 연료 벽면에서의 분출 유동을 모사한 채널 유동에 대한 LES 해석을 수행하였다. 고체추진 로켓의 연소 과정에서 관찰되는 현상과 매우 흡사하게 벽면 근처에서 특정주파수로 진동하는 유동 현상이 존재한다는 것을 확인하였고, 산화제와 분출 유동의 간섭에 기인한 유동의 진동현상은 벽면 근처의 매우 얇은 영역에서만 존재하였다. 큰 길이 스케일의 유동현상을 보여주는 압력 섭동장으로부터 채널 내 주유동이 특정 주파수 특성을 갖고 하류로 진행해 가는데, 이는 산화제 유동이 분출유동과 상호작용을 하면서 발생된 전단유동의 특성을 나타낸 것이다. 그러나 하이브리드 로켓 연소실 유동의 진동 특성은 고체 추진 로켓에서 관찰되는 유동 특성과는 달리, 진동의 강도가 벽면에서 온도 구배를 변화시켜 열전달의 향상을 발생시키기에는 충분하지 못한 것으로 보인다. 그러나 벽면 근처에서 특정 주파수 특성을 갖는 유동현상이 존재한다는 사실은 비슷한 크기의 주파수를 갖는 음향 가진과 같은 외부교란이 작용한다면 공진으로 발전할 수 있는 가능성을 의미한다.

고체모터의 인히비터에 의한 압력 진동 특성 LES 연구 (LES Investigation of Pressure Oscillation in Solid Rocket Motor by an Inhibitor)

  • 홍지석;문희장;성홍계
    • 한국추진공학회지
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    • 제19권1호
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    • pp.42-49
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    • 2015
  • 3차원 Large Eddy Simulation(LES)와 Proper Orthogonal Decomposition(POD) 기법을 이용하여 고체로켓의 인히비터에서 발생하는 연소실내 압력 진동 특성을 분석하였다. 인히비터 후방에서 발생한 와류는 Flow-acoustic coupling에 의해 주기적으로 반복하여 생성, 소멸이 이루어지는 것을 확인하였고, 이 와류가 내삽 노즐 입구 도출부에 충돌하면서 유동이 불균질하게 분해되고, 후방 돔으로 유입된 유동에 의한 압력 진동은 연소실 압력 진동 가진의 원인이 된다. 또한 인히비터에서 발생하는 와흘림(vortex shedding) 주기는 연소실내 와류 발생 주기와 일치하며, 실험에서 측정된 압력 진동 주파수와 비교 분석하였다.

주기적으로 회전하는 원형실린더 주위의 유동특성 (Characteristics of Flow Over a Rotationally Oscillating Cylinder)

  • 최해천;최성호;강상모
    • 대한기계학회논문집B
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    • 제26권4호
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    • pp.515-523
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    • 2002
  • Effects of rotary oscillation on unsteady laminar flow past a circular cylinder have been investigated in this study. Numerical simulations are performed for the flow at Re=100 in the range of 0.2<$\Omega$<2.5 and 0.02<$St_f$<0.8, where $\Omega$ and $St_f$ are, respectively, the maximum rotation velocity and rotation frequency normalized by the free-stream velocity and cylinder diameter. Results show that rotary oscillation has significant effects on the flow. When the rotation frequency is near the natural vortex-shedding frequency, lock-on occurs and the lock-on frequency range becomes wider as the rotation velocity increases. In a certain range of the rotation frequency and velocity, modulations in the velocity, lift and drag signals occur and this modulation frequency is expressed as a linear combination of the rotation frequency and vortex-shedding frequency. The mean drag and amplitude of the lift fluctuations show local minima near the boundary between the lock-on non and lock-on regions.

새로운 수동제어소자인 공동을 이용한 마찰력과 열전달 감소에 관한 연구 (Cavity as a New Passive Device for Reduction of Skin Friction and Heat Transfer)

  • 한성현;최해천
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2002년도 학술대회지
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    • pp.463-466
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    • 2002
  • In order to examine the possibility of using a cavity as a passive device for reduction of skin friction and heat transfer, an intensive parametric study over a broad range of the cavity depth and length at different Reynolds numbers is performed for both laminar and turbulent boundary layers in the present study. Direct and large eddy simulation techniques are used for turbulent boundary layers at low and moderate Reynolds numbers, respectively. for both laminar and turbulent boundary layers over a cavity, a flow oscillation occurs due to the shear layer instability when the cavity depth and length are sufficiently large and it plays an important role in the determination of drag and heat-transfer increase or decrease. For a cavity sufficiently small to suppress the flow oscillation, both the total drag and heat transfer are reduced. Therefore, the applicability of a cavity as a passive device for reduction of drag and heat transfer is fully confirmed in the present study. Scaling based on the wall shear rate of the incoming boundary layer is also proposed and it is found to be valid in steady flow over a cavity.

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초음속 노즐에서 발생하는 응축충격파 진동의 피동제어 (Passive Control of the Condensation Shock Wave Oscillation in a Supersonic Nozzle)

  • 백승철;권순범;김희동
    • 대한기계학회논문집B
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    • 제26권7호
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    • pp.951-958
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    • 2002
  • Rapid expansion of a moist air or a stream through a supersonic nozzle often leads to non-equilibrium condensation shock wave, causing a considerable energy loss in flow field. Depending on amount of latent heat released due to non-equilibrium condensation, the flow is highly unstable or a periodical oscillation accompanying the condensation shock wave in the nozzle. The unsteadiness of the condensation shock wave is always associated with several kinds of instabilities as well as noise and vibration of flow devices. In the current study, a passive control technique using a porous wall with a plenum cavity underneath is applied for the purpose of alleviation of the condensation shock oscillations in a transonic nozzle. A droplet growth equation is coupled with two-dimensional Navier-Stokes equation system. Computations are carried out using a third-order MUSCL type TVD finite-difference scheme with a second-order fractional time step. An experiment using an indraft wind tunnel is made to validate the present computational results. The results show that the oscillations of the condensation shock wave are completely suppressed by the current passive control method.

전력시스템 동요억제를 위한 UPFC 적용 및 제어 (Application and Control of UPFC for Improving Power System Oscillation Damping)

  • 김영수;김태준;이병하;한학근;손광명;박종근
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1997년도 하계학술대회 논문집 D
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    • pp.1124-1126
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    • 1997
  • The Unified Power Flow Controller(UPFC) with a series inverter and a shunt inverter ia able to control all three line Parameters(voltage, impedance and phase angle) and so UPFC technology has the potential to enhance the implementation and broad application of the FACTS concept with improved Performance. In this Paper, the UPFC is applied in order to improve the power flow oscillation damping. The modal performance measure is minimized in order to determine the optimal parameters of UPFC controller for damping Power flow oscillations. The dynamics of the injected voltage of UPFC is represented as a first order delay element. The UPFC controller used here is of the PIO type and the input signal to the controller is the active power flow through the UPFC. The effect of UPFC application to the Power system are analyzed from the stand point of power system oscillation damping.

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2차원 압축공기-물의 압축성 이상 유동 수치 해석 (Numerical Analysis for Two-Dimensional Compressible and Two-Phase Flow Fields of Air-Water in Eulerian Grid Framework)

  • 박찬욱;이승수
    • 대한기계학회논문집B
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    • 제32권6호
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    • pp.429-445
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    • 2008
  • Two-phase compressible flow fields of air-water are investigated numerically in the fixed Eulerian grid framework. The phase interface is captured via volume fractions of each phase. A way to model two phase compressible flows as a single phase one is found based on an equivalent equation of states of Tait's type for a multiphase cell. The equivalent single phase field is discretized using the Roe‘s approximate Riemann solver. Two approaches are tried to suppress the pressure oscillation phenomena at the phase interface, a passive advection of volume fraction and a direct pressure relaxation with the compressible form of volume fraction equation. The direct pressure equalizing method suppresses pressure oscillation successfully and generates sharp discontinuities, transmitting and reflecting acoustic waves naturally at the phase interface. In discretizing the compressible form of volume fraction equation, phase interfaces are geometrically reconstructed to minimize the numerical diffusion of volume fraction and relevant variables. The motion of a projectile in a water-filled tube which is fired by the release of highly pressurized air is simulated presuming the flow field as a two dimensional one, and several design factors affecting the projectile movement are investigated.

댐 붕괴 유동에서 갇힌 공기의 압축성에 의한 물의 압력 진동 모사 (Simulation of Pressure Oscillation in Water Caused by the Compressibility of Entrapped Air in Dam Break Flow)

  • 신상묵
    • 대한조선학회논문집
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    • 제55권1호
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    • pp.56-65
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    • 2018
  • Pressure oscillation caused by the compressibility of entrapped air in dam break flow is analyzed using an open source code, which is a two-phase compressible code for non-isothermal immiscible fluids. Since compressible flows are computed based on a pressure-based method, the code can handle the equation of state of barotropic fluid, which is virtually incompressible. The computed time variation of pressure is compared with other experimental and computational results. The present result shows good agreements with other results until the air is entrapped. As the entrapped air bubbles pulsate, pressure oscillations are predicted and the pressure oscillations damp out quickly. Although the compressibility parameter of water has been varied for a wide range, it has no effects on the computed results, because the present equation of state for water is so close to that of incompressible fluid. Grid independency test for computed time variation of pressure shows that all results predict similar period of pressure oscillation and quick damping out of the oscillation, even though the amplitude of pressure oscillation is sensitive to the velocity field at the moment of the entrapping. It is observed that as pressure inside the entrapped air changes quickly, the pressure field in the neighboring water adjusts instantly, because the sound of speed is much higher in water. It is confirmed that the period of pressure oscillation is dominated by the added mass of neighboring water. It is found that the temperature oscillation of the entrapped air is critical to the quick damping out of the oscillations, due to the fact that the time averaged temperature inside the entrapped air is higher than that of surrounding water, which is almost constant.

강의 연속주조시 Mold Oscillation에 따른 Flux층 내의 동적 압력변화 해석 (The Analysis of Dynamic Pressure in the Molten Flux near the Meniscus during Mold Oscillation for the Continuous Casting of Steel)

  • 박태호;김지훈;최주;예병준
    • 한국주조공학회지
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    • 제24권1호
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    • pp.26-33
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    • 2004
  • The pressure of the mold flux acting on the meniscus shell was investigated through the coupling analysis of heat transfer in the mold and fluid flow in the flux caused by the mold oscillation. Finite element method was employed to solve the conservation equation associated with appropriate boundary conditions. As reported by previous workers, the axial pressure is positive on the negative strip time and negative on the positive strip time. A maximum pressure is predicted toward the top of the meniscus shell which has the thin shell arid a maximum value is in proportion to the relative mold oscillation velocity. The relative mold oscillation velocity was changed by the effect of meniscus level fluctuation. Therefore the pressure of the mold flux acting on the meniscus shell was different each cycle of the mold oscillation due to the irregularity of relative mold oscillation velocity.