• 제목/요약/키워드: Single Droplet Combustion

검색결과 47건 처리시간 0.02초

대기압하에서의 에틸알코올과 케로신 연료액적의 연소에 관한 연구 (Combustion of ethyl alcohol and kerosene fuel droplets in atmospheric pressure)

  • 한재섭;김선진;박봉엽;김유
    • 한국추진공학회지
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    • 제5권3호
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    • pp.71-78
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    • 2001
  • 본 연구에서는 대기압하에서의 에틸알코올과 케로신 연료액적의 단일액적과 액적배열시 연소에 대한 실험적 조사의 결과를 보여주고 있다. 초기액적 직경은 정상적으로 1.3~l.8mm이었고 표준화된 초기 액적거리 간거리 1/do는 1.3l~2.60이었다. 실험결과 에틸알코올 및 탄화수소계 연료인 케로신의 연소속도상수(k)는 초기 액적크기에 관계없이 각각 0.0083, 0.0095 $\textrm{cm}^2$/sec로 일정하였다. 1차원 종렬로 배열된 케로신 연료액적은 표준화된 초기액적간 거리(1/do)가 감소할수록 연소속도 상수(k)는 간소하였으며 3번째 액적보다 2번째 액적이 더욱 많은 영향을 받았고 2.60이상에서는 액적수명 감소에 영향을 미치지 못하였다

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액적간격이 고정액적의 연소율상수에 미치는 영향에 관한 연구 (Effect of droplet length on a burning constant rate of suspended droplet)

  • 한재섭;김선진;김유
    • 한국추진공학회지
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    • 제6권1호
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    • pp.47-54
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    • 2002
  • 본 연구에서는 대기압하에서의 탄화수소계 연료인 제트유 연료액적에 대한 연소시 나타나는 액적의 연소특성 및 1차원 액적배열구조를 갖는 액적연소시 액적간격이 연소율 상수에 미치는 영향을 실험적으로 고찰하였다. 실험결과, 탄화수소계 연료인 제트유(jet A-1)는 실험조건하에서 단일 연료액적의 연소에 대해 액적크기에 상관없이 일정한 연소율 상수 $\kappa_c= 0.915{mm}^2$ 를 유지하였으며 대기압하에서 액적직경의 제곱$(d^2)$은 시간에 대하여 선형함수를 얻을 수 있었다. 또한, 1차원 배열구조를 갖는 액적연소(액적간격 $l/d_o$가 1.208~2.922)사이에 있어서 액적간격이 감소 할수록 액적의 연소율 상수 ${\kappa}_c$는 감소하였으며, 일정 액적간격을 가지는 액적군 연소시 3번째 액적 보다 2번째 액적의 연소율상수 ${\kappa}_c$에 미치는 영향이 더 크게 나타났다.

액적 발생기의 종류 및 액적 발생 원리에 대한 고찰 (A Survey on the Droplet Generators and Principle of Droplet Generation)

  • 박봉엽;한재섭;김선진;김유
    • 한국추진공학회지
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    • 제4권2호
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    • pp.54-60
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    • 2000
  • 액적 발생기는 Rayleigh의 액적 분열 이론에 기초한 액적 발생기가 주류를 이루고 있으며, 모세관 액주의 진동 방법에 따라 여러가지 액적 발생기가 고안되었다. 현재는 액전 발생의 표준장비로 VOAG(Vibrating Orifice Monodisperse Aerosol Generate)가 사용되고 있다. 단일 액적을 사용한 연소실험에는 적하방법이나 필라멘트에 매달린 액적을 분리하여 사용하는 방법이 더 효과적임을 알았다 단일 액적을 분리하는 방법은 액적을 대전시켜 액적 흐름에서 단일 액적을 분리하는 방법을 사용한다.

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다단연소를 이용한 저 NOx 버너의 연소특성에 관한 연구 (An Experimental Study on the Combustion Characteristics in Low Emission Multi-Staged Oil Burner)

  • 안국영;김한석;조은성
    • 연구논문집
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    • 통권27호
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    • pp.101-108
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    • 1997
  • The characteristics of combustion and emissions in multi-staged oil burner have been experimentally studied for the various range of equivalence ratios, drop sizes and fuel formulations. Malvern system was used to measure droplet size of fuel. Light fuel oil and light fuel oil doped with pyridine($C_5H _5N$) were used to investigate the effects on fuel NOx emission. The emissions of NO and CO in exhaust gas and the flame temperatures were measured by the gas analyzer and thennocouples. NOx emissions were increased by increasing the excess air ratio (range:$lambda=1.1-1.4$) or decreasing the SMD of droplet in single-staged burner. In comparison with the single-staged burner, the emission of NOx in multi-staged burner was reduced by 50% but CO emission was slightly increased. It is found that multi-staged burner has a good capability in reducing thermal NOx resulting from the distributed heat release rate and lower flame temperature in fuel-rich and fuel-lean combustion zone. Moreover, the fuel NOx emission of the multi-staged burner is lower than that of single-staged burner, because multi-staged burner has fuel rich zone where fuel N is converted to $N_2$ more than NO. In 3-staged burner, the percentage of each stage combustion air have strong influence on emission characteristics. It is also found that NOx emission can be reduced by decreasing inner and outer air percentage or increasing middle air flow rate and CO emission is vice versa.

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정상 중력장하의 단일 액적연소에 있어서 매연 농도의 측정 (Measurements of sooting in single droplet combustion under the normal-gravity condition)

  • 이경욱;이창언;오수철
    • 대한기계학회논문집B
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    • 제22권4호
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    • pp.468-480
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    • 1998
  • The temporal and spatial distributions of soot volume fractions were measured for single toluene droplet flames as a function of pressure under the normal-gravity condition. In order to characterize the transient nature of the flame and sooting regions, a full-field light extinction and subsequent tomographic inversion technique was used. The reduction in sooting as a function of pressure was assessed by comparison of the maximum soot volume fractions at several vertical positions along the axis above the droplet. The maximum soot volume fraction was reduced by 70% when the pressure was reduced by 60% from 1 atm to 0.4 atm. The reduction in sooting is attributed to variation of the geometric configuration of flame which reduces the system Grashof number as well as only the change in the adiabatic flame temperature as the pressure decreases. The gravimetrically-measured total soot yield was also compared to the optically-measured soot volume fraction to obtain a correlation between the two measurements. As a result, the total soot yield was linearly proportional to the optically-measured maximum soot volume fraction and linearly reduced as the pressure decreased. Accordingly, the non-intrusive full-field light extinction-measurements were able to be calibrated not only to measure soot volume fraction, but to simultaneously evaluate the total soot yield emitted from the toluene droplet flame (which is useful in the practical application).

고압상태에서의 연료액적의 증발특성 해석 (Analysis of Fuel Droplet Vaporization at High-Pressure Environment)

  • 이재철;김용모
    • 한국분무공학회지
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    • 제1권1호
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    • pp.35-43
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    • 1996
  • A vaporization model for single component fuel droplet has been developed for applying to sub- and supercritical conditions. This model can account for transient liquid heat ins and circulation effect inside the droplet, forced and natural convection, Stefan flow effect, real gas effect and ambient gas solubility into the liquid droplet in high-pressure conditions. Thermodynamic and transport properties are calculated as functions of temperature and pressure in both phases. Numerical calculations are carried out for several validation cases with the detailed experimental data. Numerical results confirm that this supercritical vaporization model is applicable to the high-pressure conditions encountered in the combustion processes of diesel engine.

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플래쉬 상평형 계산에 의한 고압 액적기화의 수치적 연구 (High-Pressure Droplet Vaporization with Emphasis on the Vapor-Liquid Equilibrium Calculation)

  • 이강원;채종원;윤웅섭
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2001년도 제22회 KOSCI SYMPOSIUM 논문집
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    • pp.106-118
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    • 2001
  • A rigorous study of single droplet vaporization under quiescent high pressure atmosphere is attempted adopting method of flash evaporation calculation for vapor-liquid equilibrium. Results due to flash method shows excellent agreement with measurement. Also shown is the present model fairly capable of depicting transients of droplet vaporization under high pressure environment, such as ambient gas solubility, property variation, and multicomponent transports. Systematic treatment of these effects with emphasis on vapor-liquid phase equilibrium revealed; conventional treatment for subcritical droplet vaporization, such as $d^2$-law, leads to erroneous prediction of droplet history, augmented gas solubility is significant under supercritical pressure, and vaporization rate proportionally increase with pressure.

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내부 온도분포를 고려한 Coal-Water Slurry의 점화현상에 관한 이론적 해석 (Theoretical Analysis of Ignition of a Coal-Water Slurry Droplets with Interior Temperature Distribution)

  • 최창은;백승욱;김종욱
    • 대한기계학회논문집
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    • 제17권7호
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    • pp.1823-1832
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    • 1993
  • CWS(coal-water slurry) is used for application in power plants, boilers, industrial furnaces. A single coal-water slurry droplet ignition has been examined to reveal the basic nature of their evaporation, volatilization and heating processes. The interior droplet temperature distribution has been considered. The effect of coal thermal conductivity, droplet size, water fraction in the slurry, gas temperature and velocity and radiation on the ignition phenomena were also studied. Either increasing the velocity and gas temperature or decreasing the droplet size and water fraction in the slurry may reduce the time for evaporation and ignition delay time.

주변난류유동이 단일액적의 증발에 미치는 영향에 대한 수치적 연구 (Numerical Study for Ambient Turbulence Effects on a Single Droplet Vaporization)

  • 박정규
    • 대한기계학회논문집
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    • 제19권10호
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    • pp.2699-2709
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    • 1995
  • This investigation reports on the study of the ambient turbulent effects on the droplet vaporization in the fuel spray combustion. For tractability, this discussion considers a single droplet in an infinite turbulent flow. In this numerical study, the low-Reynolds-number version of k-.epsilon. turbulence model was used to represent the turbulence effects. The set of two-dimensional conservation equations which describe the transport phenomena in turbulent flow using the mean flow quantities including the droplet internal laminar motion, are solved numerically with the finite difference procedure of Patankar(SIMPLER). The evaluation of the computational model is provided by two limiting cases: turbulent flow over the solid sphere and the laminar flow over a liquid drop. The results show that the turbulence effects are noticeable for the vaporization at high turbulence intensity (10-50%) which is encountered in a typical spray. The magnitude of turbulence effects mainly depends on the turbulent intensity. These effects are not sensitive to the Reynolds number in the range of 50 to 200, ambient temperature in the range of 700 to 1000.deg. K and the volatility.