• 제목/요약/키워드: Droplet Number Density

검색결과 38건 처리시간 0.018초

워터커튼에서 액적의 크기 분포와 광학 두께의 상관관계 분석 (Analysis on the Relations of Droplet Size Distribution and Optical Depth in Water Curtain)

  • 유우준;유홍선
    • 한국화재소방학회논문지
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    • 제30권2호
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    • pp.62-67
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    • 2016
  • 본 연구에서는 워터 커튼용 노즐(Water curtian nozzle)의 액적 크기 분포(droplet size distribution)에 따라서 복사열을 감쇄하기 위한 광학 두께(optical depth)를 분석하였다. 액적 크기 분포를 측정하기 위해서 HELOS/VARIO 물 입자 측정 장치를 사용하였으며, Deirmenjian의 수정된 감마 분포 함수(modified gamma distribution function)를 적용하여 분사 특성을 정량화 하였다. 본 연구에서 사용한 워터 커튼용 노즐은 분포 상수(distribution constant) ${\alpha}=1$, ${\gamma}=5.2$의 값으로 나타났으며, 액적의 밀도 수(number density)를 고려한 분포 하중(droplet loading)과 액적 크기 분포 변화에 따라서 광학 두께에 관한 일반화된 관계식을 제시하였다. 본 연구 결과는 워터 커튼용 노즐의 설계 조건을 분석하기 위한 유용한 연구 자료가 될 것으로 사료된다.

디젤 분무(噴霧) 액적(液滴)의 크기와 속도(速度) 동시계측(同時計測)에 관한 연구(硏究) (A Study on the Simultaneous Measurement of Droplet Size and Velocity in a Diesel Fuel Spray)

  • 장영준;전충환;박호준;김현규;김상진
    • 한국자동차공학회논문집
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    • 제2권5호
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    • pp.11-22
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    • 1994
  • The pupose of this study is to measure droplet size and velocity simultaneously for a transient diesel fuel spray in a quiescent chamber at atmospheric temperature and pressure. Generally, diesel combustion phenomena is mainly governed by characteristics of injection system and fuel spray. Therefore we need to clarify these characteristics for developing more economical diesel systems. In this study, correlation between droplet size and velocity was measured at downstream distance from nozzle. Governing parameters are pump speed and fuel quantity for the detailed nature in this transient diesel fuel spray. It is observed effect to the droplet size and velocity distribution. Velocity(peak, mean, rms), number density and droplet size were investigated simulaneously using PDA in the spray. Various results are presented to illustrate the effects of operation factors and correlation between the droplet diameter and velocity.

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원자적으로 균일한 평판 위에서 움직이는 물 액적에 대한 분자동역학 시뮬레이션 (A Molecular Dynamics Simulation for the Moving Water Droplet on Atomistically Smooth Solid Surface)

  • 홍승도;하만영
    • 대한기계학회논문집B
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    • 제33권8호
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    • pp.559-564
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    • 2009
  • The variation in the shape of water droplet moving on atomistically smooth solid surface in the presence of a constant body force is simulated using molecular dynamics simulation. We investigated how the advancing and receding contact angle of the moving water droplet changes on a solid surface having various characteristic energies. From the MD simulation results, we obtained the density profile defined as the number of water molecules at a given position. Then, assuming the water droplet periphery to be a circle, we calculated the contact angles by using a nonlinear fitting of the half-density contour line. The present simulation clearly shows the different profile of the advancing and receding contact angle for these three different interaction potential between the water droplet and the solid surface.

2유체 분무의 연소특성에 관한 실험 및 수치 해석적 연구 (Experimental and Numerical Study on Characteristics of Air-assisted Spray and Spray Flames)

  • 김동일;오상헌
    • 한국연소학회지
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    • 제3권2호
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    • pp.51-63
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    • 1998
  • Air-assisted atomizer flames are investigated numerically to study spray structures in nonburning and burning conditions based on experimental data. A PDA is used to measure droplet size, velocity, and number density for both nonburning and burning spray. Computations utilize time-averaged gas-phase equations and $k-{\varepsilon}$ turbulence model for simplicity. The major features of the liquid-phase model are that a SSF approach is used to represent the effect of gas-phase turbulence on droplet trajectories and vaporization, an infinite-diffusion model is employed to represent the transient liquid-phase process. Computation and experiment results show that the droplet acceleration and evaporation proceed quickly in near the atomizer, characterizing high number densities and a strong convective effect. The primary combustion zone, however, is dorminated by the gas phase reaction and exhibits a sheath combustion.

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액체연료 액적군의 집단 점화 (Group Ignition of Liquid Fuel Droplets Cloud)

  • 박용열;김호영
    • 대한기계학회논문집
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    • 제16권12호
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    • pp.2376-2384
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    • 1992
  • 본 연구에서는 액적들의 분포상태가 비균일 분포 즉 비균일 액적크기 및 수밀 도 분포를 갖는 액적군에 대하여 집단점화 현상을 이론적인 해석을 통하여 규명한다. 이를 위하여 분사직후부터 점화순간까지의 과정 즉, 액적의 온도상승-증발-혼합기 형 성-반응의 진행-점화의 과정에 초기 액적들의 크기 및 수밀도 분포상태와 기체상의 조 건들이 중요 제변수들, 즉 온도, 속도, 성분질량농도 및 액적의 크기 분포등에 미치는 영향 등은 물론 액적군의 증발특성, 점화특성 등을 이론적 모델을 구성하여 해석한다. 결과들은 현재 사용되고 있는 집단연소 모델의 초기조건으로 사용하며, 액적들의 분포 상태에 따른 점화시의 액적군의 상태 및 점화 특성은 보다 향상된 연소시스템의 운전 및 설계에 분사조건으로서 활용될 것이 기대된다.

2유체 분사노즐을 이용한 분무 및 연소특성에 관한 실험적 연구 (An Experimental Study on the Characteristic of Sprays and Spray Flames by Twin-Fluid Atomizer)

  • 백민수;오상헌
    • 대한기계학회논문집
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    • 제19권2호
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    • pp.548-558
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    • 1995
  • An experimental investigation has been conducted to study the spray and combustion characteristics using the air-assisted twin fluid atomizer. Axial mean and fluctuating velocity components as well as drop-size distributions in non-reaction spray were measured with a nonintrusive phase doppler technique. Droplet number density distributions were also visualized using high speed CCD camera. Locations of spray and flame boundaries are obtained by direct photographic method. It is confirmed that at the fixed fuel flow rate, the increase of the atomizing air flow causes improvements on both spray and combustion characteristics under stable flame conditions. Internal group combustion modes where flame is located inside the spray boundary are observed to exist in the upstream region of higher droplet number density.

디젤분무의 모델에서 액적의 형상 및 수밀도의 영향에 관한 연구 (The Effects of Initial Droplet Shape and Number Density on Modeling of Non-evaporating Diesel Sprays)

  • 원영호
    • 한국분무공학회지
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    • 제7권2호
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    • pp.22-30
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    • 2002
  • A number of droplet breakup models have been developed to predict the diesel spray. The capabilities of droplet deformation and breakup models such as TAB, ETAB, DDB and APTAB models are evaluated in modeling the non-evaporating diesel sprays injected into atmosphere. New methods are also suggested that take into account the non- spherical shape of droplets and the reduced drag force by the presence of neighbouring droplets. The KIVA calculations with standard ETAB, DDB, and APTAB models predict well the spray tip penetrations of the experiment, but overestimate the Sauter mean Diameter(SMD) of droplets. The calculation with non spherical droplets injected from the nozzle shows very similar results to the calculation with spherical droplets. The drag coefficient which is linearly increased with the time after start of injection during the breakup time gives the smaller SMD that agrees well with the experimental result.

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기류분사 노즐에 의한 선회 분무 화염의 구조에 관한 실험적 연구 (An experimental study on swirling spray flame structure by air-blast nozzle)

  • 오상헌;백민수;김동일
    • 대한기계학회논문집B
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    • 제21권4호
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    • pp.473-485
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    • 1997
  • Detailed experimental study has been made of air blast kerosene spray flames with and without swirl in combustion air flow. Phase-Doppler detect technique is used to measure Sauter mean diameter, axial component mean and rms velocity, size-velocity correlation, and number density. These measurements are obtained for both nonreacting and reacting cases under several stable flame conditions. The results show that the introduction of swirl to the combustion air modifies the spatial distribution of droplet size, velocity, and number density, and thus alters the flame structure. However, due to the weak swirl intensity, the overall structure of swirling flames are essentially same as that of nonswirling flames. Physical model of structure of air blast atomized spray flames is projected to show that spray flames are composed of three distinct regions: the two-phase mixture region, the main reaction and the intermittent combustion region. Near the atomizer, two phase mixture of droplet and air is formed in the core region. This dense spray region is characterized by high droplet number density and the strong convective effect. There follows the main combustion region where the main flame penetrates within the spray boundary. Main reaction region of these flames are governed by internal group combustion mode. Finally there exists the intermittent combustion region where local group burning or isolated droplet burning occurs.

연료의 물성치 변화가 이중 오리피스 연료 노즐의 분무 구조에 미치는 영향에 관한 연구 (A Effect of Fuel Properties on Spray Structure for Dual Orifice Fuel Injector)

  • 이동훈;최성만;박정배
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 제26회 KOSCO SYMPOSIUM 논문집
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    • pp.179-188
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    • 2003
  • The spray characteristics of dual orifice injector were investigated under two different fuels through measurement of SMD, number density and volume flux by using PDPA system. In this experiment, we found out that the droplet size and spray structure are strongly depend on fuel density and viscosity.

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Heat Transfer Correlation to Predict the Evaporation of a Water Droplet in Superheated Steam during Reflood Phase of a LOCA

  • Kim, Yoo;Ban, Chang-Hwan
    • 에너지공학
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    • 제9권3호
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    • pp.261-268
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    • 2000
  • A heat transfer correlation to predict the vaporization of a water droplet in highly superheated steam during a loss-of-coolant accident(LOCA) of a nuclear power plant is provided. Vaporization of liquid fuel or water droplets in superheated air or steam and subsequent interface heat transfer between a liquid droplet and superheated gas is typically correlated by way of a Nusselt number as a function of Reynolds number, Prantl number, and in some cases including mass transfer number. Presently available correlations and experimental data of the evaporation of liquid droplets in air or steam are analyzed and a new Nusselt number correlation is proposed taking Schmidt number into consideration in order to account for binary diffusion of the vapor as well, Nu$\_$f/(1+B)$\^$0.7/=2+0.53Sc$\_$f/$\^$-1/5/Re$\_$M/$\^$$\sfrac{1}{2}$/Pr$\_$f/$\^$$\sfrac{1}{3}$/ for which properties are evaluated at film condition except the density of Reynolds number evaluated at ambient condition. Diverse correlations for various combinations of liquid and gas species are put into single equation. The blowing correction factor of (1+B)$\^$0.7/ is confirmed appropriate, and a criterion to distinguish so-called high- and low-temperature condition of ambient gas is set forth.

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