• 제목/요약/키워드: Air Nozzle Exit Velocity

검색결과 57건 처리시간 0.024초

MILD 연소로에서 노즐의 위치와 유동 조건에 따른 유입량 특성에 관한 연구 (A Study on the Flow Entrainment Characteristics of a Coaxial Nozzle Used in a MILD Combustor with the Change of Nozzle Position and Flow Condition)

  • 심성훈;하지수
    • 대한환경공학회지
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    • 제34권2호
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    • pp.103-108
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    • 2012
  • 연소과정 중에 발생하는 질소산화물을 저감하는 기술인 MILD 연소로는 연소용 공기 및 연료로 고온의 배기가스가 유입되는 양에 따라 질소산화물 저감 특성이 많은 영향을 받는다. 일반적인 MILD 연소로는 연료와 연소용 공기는 수직 상향방향이고 배기가스는 수직하향 방향으로 흐르면서 배기가스가 유입되는데 이러한 형태보다 더욱 배기가스의 유입량을 증가시키기 위한 방법으로 동심원관형태의 MILD 연소로를 사용하고 있다. 본 연구에서는 바깥 원통의 배기가스 통로에서 안쪽 원통의 연소통로 사이에 연결관을 설치하고 배기가스를 유입하기 위한 공기노즐을 동심원관 형태로 설치하여 공기분사속도, 노즐 직경, 배기가스측 압력과 연소로측 압력 차이의 변화에 따른 유입량 특성을 수치해석을 통해 살펴봄으로써 MILD 연소로에서 더욱 적극적인 배기가스의 유입량 특성을 파악하는 것을 연구하였다. 공기노즐 분사속도의 증가에 따라 유입량은 속도의 제곱근에 비례하는 것을 알았고 배기가스 측과 연소로 측의 압력차의 크기에 선형적으로 감소하는 것을 관찰하였다. 공기노즐 출구 위치의 변화는 유입량 변화에 큰 영향이 없음을 알 수 있었다.

동축이중원관 분류에 있어서의 유동 특성에 관한 연구 (A Study on the Flow Characteristics in Double Coaxial Pipe Jets)

  • 신창환;김경훈
    • 한국분무공학회지
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    • 제1권4호
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    • pp.46-53
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    • 1996
  • The present study is aiming at improving the performance of main nozzle of an air jet loom with a modified reed and auxiliary nozzles. The double coaxial pipe jets consisting of a central air jet and an annular air jet have been experimentally investigated. The duter jet has a potential core and a constant velocity. The inner jet through an inner long pipe is induced by the subatmospheric pressure near the inner nozzle edge, and the jet velocity of an inner pipe is always lower than that of a outer pipe. The static pressures of the main nozzle over a wide range of the nozzle tank pressure were measured, and the nozzle velocity and Mach numbers were analytically calculated. Experiment81 results indicate that the critical condition of Mach number of unity to occur at the two positions in a main nozzle; one of them is the needle tip and the other is the acceleration tube exit An increase in the tank pressure causes the critical throat condition to occur at the two positions above. The velocity of acceleration-tube exit is maximum at the critical length L* and flow patter in acceleration-tube over critical lengh remains unstable.

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U-곡관 노즐에서 예혼합화염에 미치는 이차 유동의 영향 (Effect of Secondary Flow on a Premixed Flame in the U-bend Nozzle)

  • 김형근;차민석;정석호
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 1998년도 제17회 KOSCI SYMPOSIUM 논문집
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    • pp.91-101
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    • 1998
  • The effect of secondary flow on both methane/air and propane/air premixed flame was investigated experimentally. By changing the radius of curvature, various flame behavior was observed. In the V-bend nozzles, flame surface is deformed from axisymmetry. As the exit velocity increased, flame lifted off partially. When the radius of curvature of the V-bend increased, the region where premixed flame is entirely on the rim increased. Since the axial velocity field is changed due to the secondary flow effect, comparison of V-bend and straight tube with the same diameter shows larger V-bend nozzle exit velocity for both flash back and flame blowout. The flame characteristics are mapped with a equivalence ratio, a velocity, and a nozzle radius of curvature. To identify physical reasoning on the flame surface deformation, numerical calculations are conducted. OH radical distributions in flames are visualized by PLIF technique.

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과농-희박연료가 교차로 공급되는 상호작용 화염의 화염날림에 관한 연구 (Effect of Lean-rich Fuel Staging to the Multiple Jet Flames on the Blowout Velocity)

  • 이병준;박경욱
    • 대한기계학회논문집B
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    • 제32권1호
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    • pp.7-14
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    • 2008
  • It has been reported that partially premixed interacting flame could be sustained till sonic exit velocities if eight small nozzles are arranged optimally and one nozzle on the center is fed small amount of fuel. But the equivalence ratios in this experiments were 20-60. In this research, experiments were conducted to know the effects of lean-rich staging in multiple jet flames on the blowout velocity. The fuel mole tractions in the fuel-air mixture, the nozzle exit velocity and the diameter between adjacent nozzles were alternatively changed. When the lower mole fraction fuel was fed to the nozzles located near the center and small amount of fuel to the center nozzle, flame was not extinguished even at the nozzle exit velocity of 200m/s. Also the interacting flame could be sustained till that velocity when four small size nozzles for lean mixture were located within the arrangement of four nozzles for rich mixture and configured optimally.

벤튜리관 형상에 따른 배기가스 재순환 유동 특성에 관한 연구 (A Study on the Flow Characteristics of the Flue Gas Recirculation with the Change of Venturi Tube Shape)

  • 하지수;심성훈;김대연
    • 한국가스학회지
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    • 제23권1호
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    • pp.12-18
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    • 2019
  • 자동차 엔진이나 소각로 등의 연소기기에서 질소산화물을 저감하기 위한 여러 가지 방법 중에 배기가스 재순환 방법이 널리 쓰이고 있다. 본 연구에서는 고온의 배기가스를 재순환 유입하기 위해 벤튜리 튜브를 사용할 경우에 상온의 공기 노즐 출구 위치를 변화하여 고온의 배기가스를 재순환 유입하는 최적 위치를 도출하기 위해 전산 열유체해석을 통해 살펴보았다. 또한 상온의 공기 노즐 출구에 원뿔을 설치한 경우에 대한 배기가스 재순환 유입량 특성을 고찰하였다. 공기 노즐 출구 위치를 배기가스 재순환 유입 출구의 시작위치(z=0)에서 끝 위치(z=0.6m)로 변화하였을 때 유선과 온도 분포 변화를 관찰하였으며 배기가스 재순환 유입량비와 혼합가스 출구의 평균온도로 정량적으로 비교하였다. 본 연구를 통하여 상온의 공기 노즐 출구 위치는 z=0.15m(1/4L)에서 재순환 유입량과 출구에서의 평균온도가 가장 최대가 되는 것을 알 수 있었다. 또한 공기 노즐 출구에 원뿔을 설치하면 공기 노즐 출구의 속도가 증가하여 배기가스 재순환 유입량이 약 2배 증가하고 혼합가스 출구 온도도 $116^{\circ}C$ 증가하는 것을 알 수 있었다.

에어제트직기 주 노즐내 천음속 유동의 수치 해석적 연구 (A Numerical Analysis of Transonic Flows in an Axisymmetric Main Nozzle of Air-Jet Loom)

  • 오태훈;김상덕;송동주
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 1998년도 춘계 학술대회논문집
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    • pp.168-173
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    • 1998
  • A numerical analysis of axisymetric backward facing step main nozzle flow in air jet loom has been accomplished. To obtain basic design data for an optimum main nozzle for an air-jet loom and to predict the transonic/supersonic flow, a characteristic based upwind flux difference splitting compressible Navier-Stokes method has been used. The wall static pressure of the main nozzle and the flow velocity changes in the nozzle tube were analyzed by changing air tank pressures and acceleration tube lengths. The flow inside the nozzle experiences double choking one at the needle tip and the other at the acceleration tube exit at tank pressures over $4kg_f/cm^2$. The tank pressure $P_t$ leading to the critical condition depends on the acceleration tube length; i.e, $P_t$ is higher for longer acceleration tubes. The $P_t$ value required to bring the acceleration tube exit to the critical condition is nearly constant regardless of acceleration tube length. The round needle tip shape might lead to less total pressure loss when compared with step shape.

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성에제거 덕트 입구 가이드베인 형상이 노즐출구 유량분포특성에 미치는 영향 (Effects of an Inlet Guide Vane on the Flowrate Distribution Characteristics of the Nozzle Exit in a Defrost Duct System)

  • 김덕진;이지근
    • 한국자동차공학회논문집
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    • 제16권4호
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    • pp.88-96
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    • 2008
  • Effects of the duct inlet guide vane on the flowrate distribution characteristics of the defroster nozzle exit in a defrost duct system were investigated experimentally to design the optimum heating, ventilation and air conditioning (HVAC) system applied in an automotive compartment. A 3-dimensional hot-wire anemometer system was used to measure the velocity field in the vicinity of the defroster nozzle jet flow and the velocity distributions near the windshield interior surface. At first, two cases of with- and without-duct inlet guide vanes were considered as the test condition, and then three cases of the duct inlet guide vane were tested to determine the optimum guide vane shape and their positions. The arrangement of the duct inlet guide vanes has an effect on the improved flowrate distribution at the defroster nozzle exit and near the windshield interior surface. However, the application of the lots of guide vane to control the flow direction leads to increase the flow resistance, resulting in the decreased flowrate issuing from the defroster nozzle. The shape of the duct inlet guide vane affects not only the flowrate distribution between the driver side and the assistant driver side but also the reduction of the flow resistance in the defrost duct system.

충돌판(衝突板) 근방(近傍)에 배열(配列)된 2차원(次元) rod가 충돌분류(衝突噴流) 열전달(熱傳達)에 미치는 영향(影響)[3] : rod직경변화(直徑燮化)에 대한효과(效果) (Heat Transfer Augmentation on Flat Plate with Two-Dimensional Rods in Impinging Air Jet System [3] : Effect of Rod Diameter)

  • 김동춘;이용화;서정윤
    • 설비공학논문집
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    • 제2권4호
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    • pp.295-302
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    • 1990
  • The purpose of this study is augmentation of heat transfer without additional power in two-dimensional impinging air jet. The technique of heat transfer augmentation used in this experiment is to place rod bundles in front of the flat heated surface. The effects of rod diameter, nozzle-to-target plate distance and the nozzle exit velocity on heat transfer have been investigated. The main conclusions obtained from this experiment are as follows. High heat transfer augmentation is achieved by means of flow acceleration and thinning of boundary layer by placing rod bundles in front of the flat plate. Average heat transfer coefficient becomes maximum in the case of H/B=10,D=4mm. For H/B=2,D=4mm, maximum heat transfer augmentation has been determined to be about 1.5 times larger than that of the flat plate. Heat transfer augmentation by placing the rod bundles at 12m/s is to be about 2 times more than increasing nozzle exit velocity from 12m/s to 18m/s.

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Effect of Air Velocity on Combustion Characteristics in Small-Scale Burner

  • Laryea, Gabriel Nii;No, Soo-Young
    • 한국연소학회지
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    • 제10권1호
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    • pp.1-6
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    • 2005
  • This paper presents the combustion characteristics of hydrocarbon fuel from a conventional pressure-swirl nozzle of a small-scale burner. The nozzle has orifice diameters of 0.256 mm and liquid flow rates ranging from 50 to 64 mL/min were selected for the experiments. The furnace temperature distribution along the axial distance, the gas emission such as CO, $CO_2$, NOx, $SO_2$, flue gas temperature, and combustion efficiency were studied. The local furnace and flue gas temperatures decreased with an increase in air velocity. At injection pressures of 1.1 and 1.3 MPa the maximum furnace temperatures occurred closer to the burner exit, at an axial distance of 242 mm from the diffuser tip. The CO and $CO_2$concentrations decreased with an increase in air velocity, but they increased with an increase in injection pressure. The effect of air velocity on NOx was not clearly seen at low injection pressures, but at injection pressure of 1.3 MPa it decreased with an increase in air velocity. The effect of air velocity on $SO_2$ concentration level is not well understood. The combustion efficiency decreased with an increase in air velocity but it increased with an increase in injection pressure. It is recommended that injection pressure less than 0.9 MPa with air velocity not above 8.0 m/s would be suitable for this burner.

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Effect of Air Velocity on Combustion Characteristics Scale Burner

  • Laryea, Gabriel Nii;No, Soo-Young
    • 한국농업기계학회:학술대회논문집
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    • 한국농업기계학회 2005년도 동계 학술대회 논문집
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    • pp.76-82
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    • 2005
  • This paper presents the combustion characteristics of hydrocarbon fuel from a conventional pressureswirl nozzle of a small-scale burner. The nozzle has orifice diameters of 0.256 mm and liquid flow rates raging from 50 to 64 mL/min were selected for the experiments. The furnace temperature distribution along the axial distance, the gas emission such as CO, $CO_2,\;NOx,\;S0_2,$ flue gas temperature, and combustion efficiency were studied. The local furnace and flue gas temperatures decreased with an increase in air velocity. At injection pressures of 1.1 and 1.3 MPa the maximum furnace temperatures occurred closer to the burner exit, at an axial distance of 242 mm from the diffuser tip. The CO and $CO_2$ concentrations decreased with an increase in air velocity, but they increased with an increase in injection pressure. The effect of air velocity on NOx was not clearly seen at low injection pressures, but at injection pressure of 1.3 MPa it decreased with an increase in air velocity. The effect of air velocity $SO_2$ concentration level is not well understood. The combustion efficiency decreased with an increase in air velocity but it increased with an increase in injection pressure. It is recommended that injection pressure less than 0.9 MPa with air velocity not above 8.0 m/s would be suitable for this burner.

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