• 제목/요약/키워드: Two Phase Flows

검색결과 327건 처리시간 0.031초

저반사구조물을 이용한 파력발전에 있어서 압축공기흐름 및 작용파압에 관한 수치해석 (Numerical Analysis of Pressurized Air Flow and Acting Wave Pressure in the Wave Power Generation System Using the Low-Reflection Structure with Wall-Typed Curtain)

  • 이광호;최현석;김창훈;김도삼;조성
    • 한국해안·해양공학회논문집
    • /
    • 제23권2호
    • /
    • pp.171-181
    • /
    • 2011
  • 최근 생산비용을 절감하고 고밀도의 해양에너지발전시스템을 구축하기 위한 다양한 접근이 시도되고 있다. 본 연구에서는 방재와 파랑에너지의 이용이라는 두 목적을 달성하기 위하여 가장 효율적인 에너지의 변환시스템으로 널리 알려져 있는 파력발전장치인 진동수주형(OWC, Oscillating Water Column) 파력발전시스템을 적용한 curtain식 저반사구조물에 대해 단주기파랑의 작용하에서 공기터빈에 직접 작용하는 압축공기의 흐름속도와 구조물에 작용하는 파압에 관한 특성을 3차원수치실험으로부터 검토한다. 해석에서는 기체와 액체의 혼상동적현상을 동일한 지배방정식으로 해석하는 이상류(二相流) 수치모델에 기초한 3차원수치파동수로를 적용하였다. 이로부터 입사파고의 변화와 curtain wall의 침수심에 따른 압축공기의 속도변화 및 작용파압의 특성을 확인하였고, 더불어 반사율이 최소가 되는 주기에서 압축공기의 최대속도가 발생하는 것을 확인하였다.

미세유체장치를 이용한 생분해성 Polycarprolactone의 단분산성 미세입자 생성제어 (Controlled Production of Monodisperse Polycaprolactone Microparticles using Microfluidic Device)

  • 정헌호
    • 청정기술
    • /
    • 제25권4호
    • /
    • pp.283-288
    • /
    • 2019
  • 단분산성 마이크로입자는 약물캡슐화 및 전달을 위한 다양한 응용분야에서 사용되고 있다. 미세유체장치는 매우 균일한 액적을 생산할 수 있는 중요한 장치이며 이 액적은 단분산성 마이크로입자를 생성할 수 있는 중요한 템플레이트(template)로의 역할을 한다. 미세유체장치는 마이크론 크기의 채널로 구성되어 표면장력과 점성력 간의 균형을 정교하게 조절할 수 있으며, 이는 단분산성 액적을 형성하는 필수적인 기술 중의 하나이다. 본 연구는 유동집적채널 기반의 미세유체장치에서 매우 균일한 polycaprolactone (PCL) 생분해성 고분자 입자를 제조하는 방법을 제안한다. 유동집적채널 기반의 미세유체장치는 polydimethylsiloxane (PDMS) 기반의 소프트리소그래피(soft-lithography) 방법을 통해 제작된다. 액적 생성에서 중요한 요소는 마이크로 액적의 크기와 단분산성을 조절하는 것이다. 이를 위해, 본 연구에서는 이 미세유체장치에서 오일용액 분산상과 수용액 연속상의 부피유속을 제어하여 단분산성 액적 형성 조건을 최적화하였다. 그 결과 균일한 액적을 형성할 수 있는 dripping 영역에 대한 최척화된 유속조건을 확인하였다. 그런 다음, 마이크로입자를 생성하기 위해 PCL 고분자를 포함한 액적을 장치에서 형성한 후 용매의 증발에 의해 입자화 하였다. 입자의 크기는 부피유속과 미세유체채널의 크기에 의해 조절되며 입자의 단분산도는 변동계수(coefficient of variation, CV)값이 5% 이하로 제어될 수 있다.

역선회 이류체 미립화기의 선회각 변화에 따른 미립화 특성연구 (Study on the Atomization Characteristics of a Counter-swirling Two-phase Atomizer with Variations of Swirl angle)

  • 김남훈;이삼구;하만호;노병준;강신재
    • 대한기계학회:학술대회논문집
    • /
    • 대한기계학회 2001년도 춘계학술대회논문집E
    • /
    • pp.125-130
    • /
    • 2001
  • Experimental and analytical researches have been conducted on the twin-fluid atomizers for better droplet breakup during the past decades. But, the studies on the disintegration mechanism still present a great challenge to understand the drop behavior and breakup structure. In an effort to describe the aerodynamic behavior of the sprays issuing from the internal mixing counter-swirling nozzle, the spatial distribution of axial (U) radial (V) and tangential (W) components of droplet velocities are investigated across the radial distance at several axial locations of Z=30, 50, 80, 120 and 170mm, respectively. Experiments were conducted for the liquid flow rates which was kept constant at 7.95 g/s and the air injection pressures were varied from 20 kPa to 140 kPa. Counter-swirling internal mixing nozzles manufactured at angles of $15^{\circ},\;30^{\circ},\;45^{\circ}$ and $60^{\circ}$ the central axis with axi-symmetric tangential-drilled holes was considered. The distributions of velocities and turbulence intensities are comparatively analyzed. PDPA is installed to specify spray flows, which have been conducted along the axial downstream distance from the nozzle exit. Ten thousand of sampling data was collected at each point with time limits of 30 second. 3-D automatic traversing system is used to control the exact measurement. It is observed that the sprays with all swirl angle have the maximum SMD for on air injection pressure of 20 kPa and 140 kPa with centerline, respectively. The nozzle with swirl angle of $60^{\circ}$ has vest performance.

  • PDF

A Mathematical Approach to Allocate the Contributions by Applying UPFCs to Transmission System Usage

  • Sedaghati, Alireza
    • 제어로봇시스템학회:학술대회논문집
    • /
    • 제어로봇시스템학회 2005년도 ICCAS
    • /
    • pp.158-163
    • /
    • 2005
  • Competitive electricity markets necessitate equitable methods for allocating transmission usage in order to set transmission usage charges and congestion charges in an unbiased and an open-accessed basis. So in competitive markets it is usually necessary to trace the contribution of each participant to line usage, congestion charges and transmission losses, and then to calculate charges based on these contributions. A UPFC offers flexible power system control, and has the powerful advantage of providing, simultaneously and independently, real-time control of voltage, impedance and phase angle, which are the basic power system parameters on which sys-tem performance depends. Therefore, UPFC can be used efficiently and flexibly to optimize line utilization and increase system capability and to enhance transmission stability and dampen system oscillations. In this paper, a mathematical approach to allocate the contributions of system users and UPFCs to transmission system usage is presented. The paper uses a dc-based load flow modeling of UPFC-inserted transmission lines in which the injection model of the UPFC is used. The relationships presented in the paper showed modified distribution factors that modeled impact of utilizing UPFCs on line flows and system usage. The derived relationships show how bus voltage angles are attributed to each of changes in generation, injections of UPFC, and changes in admittance matrix caused by inserting UPFCs in lines. The relationships derived are applied to two test systems. The results illustrate how transmission usage would be affected when UPFC is utilized. The relationships derived can be adopted for the purpose of allocating usage and payments to users of transmission network and owners of UPFCs used in the network. The relationships can be modified or extended for other control devices.

  • PDF

지하저장공동 주변 불연속 암반에서의 가스-물 천이유동해석을 위한 개별균열 유동모델의 개발 및 응용 (Development and Its Application of a Discrete Fracture Flow Model for the Analysis of Gas-Water Transient Flow in Fractured Rock Masses Around Storage Cavern)

  • 나승훈;성원모
    • 한국지반공학회:학술대회논문집
    • /
    • 한국지반공학회 2000년도 가을 학술발표회 논문집
    • /
    • pp.705-712
    • /
    • 2000
  • The fluid generally flows through fractures in crystalline rocks where most of underground storage facilities are constructed because of their low hydraulic conductivities. The fractured rock is better to be conceptualized with a discrete fracture concept, rather continuum approach. In the aspect of fluid flow in underground, the simultaneous flow of groundwater and gas should be considered in the cases of generation and leakage of gas in nuclear waste disposal facilities, air sparging process and soil vapor extraction for eliminating contaminants in soil or rock pore, and pneumatic fracturing for the improvement of permeability of rock mass. For the purpose of appropriate analysis of groundwater-gas flow, this study presents an unsteady-state multi-phase FEM fracture network simulator. Numerical simulation has been also conducted to investigate the hydraulic head distribution and air tightness around Ulsan LPG storage cavern. The recorded hydraulic head at the observation well Y was -5 to -10 m. From the results obtained by the developed model, it shows that the discrete fracture model yielded hydraulic head of -10 m, whereas great discrepancy with the field data was observed in the case of equivalent continuum modeling. The air tightness of individual fractures around cavern was examined according to two different operating pressures and as a result, only several numbers of fractures neighboring the cavern did not satisfy the criteria of air tightness at 882 kPa of cavern pressure. In the meantime, when operating pressure is 710.5 kPa, the most areas did not satisfy air tightness criteria. Finally, in the case of gas leaking from cavern to the surrounding rocks, the resulted hydraulic head and flowing pattern was changed and, therefore, gas was leaked out from the cavern ceiling and groundwater was flowed into the cavern through the walls.

  • PDF

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
    • /
    • 제55권1호
    • /
    • pp.56-65
    • /
    • 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.

ADVANCED DVI+

  • Kwon, Tae-Soon;Lee, S.T.;Euh, D.J.;Chu, I.C.;Youn, Y.J.
    • Nuclear Engineering and Technology
    • /
    • 제44권7호
    • /
    • pp.727-734
    • /
    • 2012
  • A new advanced safety feature of DVI+ (Direct Vessel Injection Plus) for the APR+ (Advanced Power Reactor Plus), to mitigate the ECC (Emergency Core Cooling) bypass fraction and to prevent switching an ECC outlet to a break flow inlet during a DVI line break, is presented for an advanced DVI system. In the current DVI system, the ECC water injected into the downcomer is easily shifted to the broken cold leg by a high steam cross flow which comes from the intact cold legs during the late reflood phase of a LBLOCA (Large Break Loss Of Coolant Accident)For the new DVI+ system, an ECBD (Emergency Core Barrel Duct) is installed on the outside of a core barrel cylinder. The ECBD has a gap (From the core barrel wall to the ECBD inner wall to the radial direction) of 3/25~7/25 of the downcomer annulus gap. The DVI nozzle and the ECBD are only connected by the ECC water jet, which is called a hydrodynamic water bridge, during the ECC injection period. Otherwise these two components are disconnected from each other without any pipes inside the downcomer. The ECBD is an ECC downward isolation flow sub-channel which protects the ECC water from the high speed steam crossflow in the downcomer annulus during a LOCA event. The injected ECC water flows downward into the lower downcomer through the ECBD without a strong entrainment to a steam cross flow. The outer downcomer annulus of the ECBD is the major steam flow zone coming from the intact cold leg during a LBLOCA. During a DVI line break, the separated DVI nozzle and ECBD have the effect of preventing the level of the cooling water from being lowered in the downcomer due to an inlet-outlet reverse phenomenon at the lowest position of the outlet of the ECBD.

유해가스 및 분진이 발생하는 작업장내의 자연환기에 대한 연구 (The Study on Natural Ventilation in Working Places with the Noxious Gas and Dust)

  • 추병길;김철;최종욱;유수열
    • 한국안전학회지
    • /
    • 제15권1호
    • /
    • pp.72-79
    • /
    • 2000
  • In recent, occupational diseases in harmful working places become a social issue. It is the well-known fact that a respiration in polluted working places exert a serious effect on health of workers. Accordingly, the cutting off contaminants air originally is the best way to improve working environments. In these cases, ventilation systems should be essentially installed to dilute or exhaust the contaminated indoor air. In this study, we investigated the characteristics of ventilation system of the noxious gas in working indoor places with natural ventilation by using COMET. The numerical simulations were carried out the natural ventilation with two phase(air, dust). For turbulent flow, Reynolds stresses were closed by the standard $\kappa$-$\varepsilon$ model. The results are as follows ; 1) In the natural exhaust in the working place, the flows of the central region have a more rapid velocity vector than the right and left one. 2) Numerical results show that the distribution of contaminants concentration have greater influence on convection than the case of diffusion by government of velocity vectors. 3) To observe the velocity variation with distance, three location of distance are considered. As results, it shows that the velocity are 0.075(m/s) at y=5(m), 10(m) and mean concentration are raised 10.6% at y=5(m), 10(m). 4) We have presented the useful data for the adequate counterplan in the harmful working places by carrying out the various investigation of the natural ventilation.

  • PDF

연안교량에 작용하는 지진해일파력에 관한 수치시뮬레이션(단파의 경우) (Numerical Simulation of Tsunami Force Acting on Onshore Bridge (for Tsunami Bore))

  • 이광호;우경환;김도삼;정익한
    • 한국해안·해양공학회논문집
    • /
    • 제29권1호
    • /
    • pp.46-61
    • /
    • 2017
  • 본 연구에서는 단파와 연안교량과의 상호작용해석에 수치해석적인 방법을 이용하며, 이 때 단파는 상 하류측의 수위차로부터 조파된다. 수치해석법에는 Navier-Stokes solver에 기초한 3차원혼상류해석법인 TWOPM-3D를 적용하며, 작용파력의 타당성은 본 수치해석결과와 기존의 실험결과와의 비교 분석으로부터 검증된다. 이로부터 교량의 종류, 단파강도, 수심 및 거더 수 등에 따른 수위변화와 유속변화를 포함하여 수평파력과 연직파력(연직상방파력과 연직하방파력)의 변동특성을 면밀히 검토하였으며, 흐름에 의해 유체 중에 연행되는 공기가 연직파력에 큰 영향을 미치는 것 등을 알 수 있었다.

공진장치에 의한 고립파의 제어에 관한 연구 (A Study on the Control of Solitary Waves by Resonator)

  • 이광호;범성심;김도삼;박종배;안성욱
    • 한국해안·해양공학회논문집
    • /
    • 제24권1호
    • /
    • pp.48-57
    • /
    • 2012
  • 본 연구에서는 고립파를 저감시키기 위한 저감공으로 본문 중에서 제시하는 공진장치를 직선배치된 기존의 방파제와 직사각형항만의 입구부에 각각 부착하고, 이에 따른 고립파의 제어능을 검토하기 위해 3차원수리모형 실험 및 3차원수치해석을 수행하였다. 수치해석에서는 3차원수치파동수조를 이용하는 3차원혼상류해석법의 TWOPM-3D를 적용하였고, 얻어진 수치해석결과와 수리실험결과를 비교 분석하여 본 수치해석법의 타당성을 검증하였다. 또한, 공진장치가 부착되지 않은 경우와 대비 고찰하여 고립파의 제어에 대한 공진장치의 제어능을 다각도로 검토한 결과, 그의 유효성을 충분히 확인할 수 있었다.