• 제목/요약/키워드: Extinction Limit

검색결과 68건 처리시간 0.022초

비정상 대향류 확산 화염의 소화 한계 확장에 대한 실험적 연구 (An Experimental Study on the Extinction Limit Extension of Unsteady Counterflow Diffusion Flames)

  • 이은도;이기호;오광철;이의주;신현동
    • 대한기계학회논문집B
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    • 제29권3호
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    • pp.390-401
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    • 2005
  • In this study, extinction limit extension of unsteady $(CH_{4}+N_{2})$/air diffusion flames was investigated experimentally. A spatially locked flame in an opposing jet burner was perturbed by linear velocity variation, and time-dependent flame luminosity, transient maximum flame temperature and OH radical were measured over time with the high speed camera, Rayleigh scattering method and OH laser-induced fluorescence, respectively. Unsteady flames survive at strain rates that are much higher than the extinction limit of steady flames, and unsteady extinction limits extend as the slope of the strain rate increases or the initial strain rate decreases. We verified the validity of the equivalent strain rate concept by comparing the course of unsteady extinction process and steady extinction process, and it was found that the equivalent strain rate concept represents well the unsteady effect of a convective-diffusive zone. To investigate the reason of the unsteady extinction limit extension, we subtracted the time lag of the convective-diffusive zone by using the equivalent strain concept. Then the modified unsteady extinction limits become smaller than the original unsteady extinction limits, however, the modified unsteady extinction limits are still larger than the steady extinction limits. These results suggest that there exist the unsteady behavior of a diffusive-reactive zone near the extinction limit due to the chemical non-equilibrium states associated with unsteady flames.

고온연료의 점화 및 화염 소화특성에 미치는 복사효과 (Radiation Effects on the Ignition and Flame Extinction of High-temperature Fuel)

  • 김유정;오창보;최병일;한용식
    • 한국화재소방학회논문지
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    • 제27권6호
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    • pp.50-56
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    • 2013
  • 대향류 비예혼합 연료-공기 유동장에서 고온연료의 점화특성과 형성된 화염의 소화특성에 미치는 복사효과에 대해 수치계산을 통해 검토하였다. 화학반응의 계산을 위해 GRI-v3.0의 상세화학반응기구를 사용하였으며, 단열계산과 광학적으로 얇은 복사모델을 적용하여 계산을 수행하였다. 대향류 유동장의 점화와 소화점을 정확히 찾기 위하여 화염제어 연속계산법을 적용하였다. 결과를 통해 스트레인율 변화에 대해 최고 온도보다는 최고 H 라디칼 농도가 점화와 소화거동을 이해하는데 더 적합하다는 것을 확인하였다. 최고 H 라디칼 농도변화 거동을 통해 기존에 알려진 S-곡선, C-곡선 및 O-곡선 등을 확인하였다. 복사열손실 분율($f_r$)과 공간에 대해 적분된 열발생률(IHRR)을 통해 $f_r$이 가장 큰 점에서 복사효과에 의한 소화가 발생하였으며, 화염신장 소화점에서는 IHRR이 가장 높지만 화염에서의 전도에 의한 열손실로 인해 소화가 되는 것을 확인하였다. 복사는 화염신장 소화점에는 거의 영향이 없지만 복사 소화점과 점화점에는 큰 영향을 주는 것을 알 수 있었다. 또한 연료의 온도가 높아질수록 복사에 의한 소화점의 스트레인율과 화염신장에 의한 스트레인율 사이의 영역이 넓어지게 되어 화염 안정성이 향상되고 있음을 알 수 있었다.

복사 열손실을 받는 셀모양 대향류 확산화염의 선형 안정성 해석 (Linear Stability Analysis of Cellular Counterflow Diffusion Flames with Radiation Heat Loss)

  • 이수룡
    • 한국연소학회지
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    • 제18권2호
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    • pp.42-50
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    • 2013
  • Linear stability analysis of radiating counterflow diffusion flames is numerically conducted to examine the instability characteristics of cellular patterns. Lewis number is assumed to be 0.5 to consider diffusional-thermal instability. Near kinetic limit extinction regime, growth rates of disturbances always have real eigen-values and neutral stability condition of planar disturbances perfectly falls into quasi-steady extinction. Cellular instability of disturbance with transverse direction occurs just before steady extinction. However, near radiative limit extinction regime, the eigenvalues are complex and pulsating instability of planar disturbances appears prior to steady extinction. Cellular instability occurs before the onset of planar pulsating instability, which means the extension of flammability.

비정상 유동의 메탄/공기 혼합기 반응안정성 효과 연구 (Combustion Stability and the Properties of Methane/Air Mixture Subjected to Unsteady Flow Fluctuations)

  • 이의주;오창보
    • 한국안전학회지
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    • 제26권5호
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    • pp.1-6
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    • 2011
  • Flame extinction and the chemistry of stoichiometric methane/air mixture were investigated numerically in the PSR(perfectly stirred reactor). For the study, PSR code was modified to be possible to unsteady calculation, and the sinusoidal fluctuation was subjected to the residence time. In the region of residence time far from the extinction limit, combustion mode was strongly dependent on the frequency. The low frequency excitation provided the quasi-steady behavior on the temperature and the concentrations of related species, but small variation of temperature was observed under high frequency. In the region of residence time near the extinction limit, the mixture subjected above 1 KHz was still reacting even though extinction had to be occurred under quasi-steady concept. The attenuation of extinction limit resulted from that chemical time was comparable to the flow time. The mean mole fractions of both NO and CO were almost same regardless of imposed frequency. However, the average mole fraction of $C_2H_2$ was decreased as increasing frequency, which implies that soot yield might be reduced at the higher frequency of flow excitation. The result provides the basic concept for flame stabilization, and it will be used to design a mild combustor.

부력을 최소화한 대향류 확산화염 소화거동에서 연료농도구배의 영향 (Influence of Fuel concentration gradient on the Extinction Behavior in Buoyancy minimized Counterflow Diffusion Flame)

  • 박진욱;박정;윤진한;길상인
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2014년도 제49회 KOSCO SYMPOSIUM 초록집
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    • pp.379-381
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    • 2014
  • Influence of fuel concentration gradient was investigated near flame extinction limit in buoyancy-suppressed non-premixed counterflow flame with triple co-flow burner. The use of He curtain flow produced a microgravity level of $10^{-2}-10^{-3}g$ in He-diluted non-premixed counter triple co-flow flame experiments. Flame stability map was presented based on flame extinction and oscillation near extinction limit. The stability map via critical diluent mole fraction with global strain rate was represented by varying outer and inner He-diluted mole fractions. The flame extinction modes could be classified into five: an extinction through the shrinkage of the outmost edge flame forward the flame center with and without self-excitation, respectively ((I) and (II)), an extinction via the rapid expansion of a flame hole while the outmost edge flame is stationary (III), both the outermost and the center edge flames oscillate, and then a donut shaped flame is formed or the flame is entirely extinguished (IV), a shrinkage of the outermost edge flame without self-excitation followed by shrinking or sustain the inner flame (V).

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메탄/공기 예혼합화염에서의 수소첨가에 의한 소염 및 $NO_x$ 발생특성에 관한 수치해석 (Numerical Analysis of the Extinction and $NO_x$ Emission in Methane/Air Premixed Flame by Hydrogen Addition)

  • 조은성;정석호;안국영
    • 한국수소및신에너지학회논문집
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    • 제17권1호
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    • pp.75-81
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    • 2006
  • Lean premixed combustion is a well known method for low $NO_x$ gas turbine combustor. But lean combustion is usually accompanied by flame instability. To overcome this problem, the hydrogen ($H_2$) was added to main fuel methane to increase flammable limit. In this paper, the effects of hydrogen addition on lean premixed combustion of methane ($CH_4$) were investigated numerically. Results showed that the extinction stretch rate increases and the extinction temperature constant with relatively small amount of $H_2$ addition. The flame temperature and NO emission increase with $H_2$ addition at the same stretch rate and equivalence ratio but it could increase the range of lean extinction and extinction equivalence ratio limit. Eventually, the $H_2$ addition case showed almost same or lower NO emission than no addictive $CH_4$ case in the extinction condition.

공기류측에 수증기가 첨가된 대향류 메탄 부분예혼합화염의 화염구조 및 소화한계에 미치는 복사효과 (Radiation Effects on the Flame Structure and Extinction Limit of Counterflow Partially Premixed Methane Flames Diluted with Water Vapor in the Air Stream)

  • 박지웅;오창보;김욱중
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2012년도 제45회 KOSCO SYMPOSIUM 초록집
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    • pp.325-328
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    • 2012
  • Radiation effects on the partially premixed methane flames diluted with water vapor in the air stream were numerically investigated. OPPDIF code and GRI-v3.0 were used in the numerical simulation. Adiabatic condition was compared with two different radiation models, optically-thin and WSGGM models. It was found that the radiation effect on the flame structure for the equivalence ratio (${\Phi}$) of 2.5 was less than ${\Phi}=1.5$. Extinction limit was not affected significantly, however, local flame structure was markedly influenced by the radiation models as increasing the water vapor concentration.

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복사 열손실을 받는 대향류 확산화염의 맥동 불안정성의 비선형 거동 (Nonlinear Behaviors of Pulsating Instabilities in Counterflow Diffusion Flames with Radiation Heat Loss)

  • 이수룡;박성천
    • 한국연소학회지
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    • 제17권3호
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    • pp.9-16
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    • 2012
  • Nonlinear dynamics of pulsating instability in radiating counterflow diffusion flames is numerically investigated by imposing Damk$\ddot{o}$hler number perturbation. Stable limit-cycle solutions occur in small ranges of Damk$\ddot{o}$hler numbers past bifurcation point of instability. Period doubling cascade and chaotic behaviors appear just before dynamic extinction occurs. Nonlinear dynamics is also studied when large disturbances are imposed to flames. For weak steady flames, the dynamic extinction range shrinks as the magnitudes of disturbances are increased. However, strong steady flames can overcome relatively large disturbances, thereby the dynamic extinction range extending. Stable limit-cycle behaviors reappears prior to dynamic extinction when the steady flames are strong enough.

상호작용하는 $H_2$-CO 예혼합 화염에서 $H_2$선호확산의 영향에 관한 수치적 연구 (Effects of Preferential Diffusion on Downstream Interaction in Premixed $H_2$/CO Syngas-air Flames)

  • 오상훈;박정;권오붕
    • 한국연소학회지
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    • 제17권3호
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    • pp.17-29
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    • 2012
  • The effects of strain rate and preferential diffusion of $H_2$ on flame extinction are numerically studied in interacting premixed syngas-air flames with fuel compositions of 50% $H_2$ + 50% CO and 30% $H_2$ + 70% CO. Flame stability diagrams mapping lower and upper limit fuel concentrations at flame extinction as a function of strain rate are examined. Increasing strain rate reduces the boundaries of both flammable lean and rich fuel concentrations and produces a flammable island and subsequently even a point, implying that there exists a limit strain rate over which interacting flame cannot be sustained anymore. Even if effective Lewis numbers are slightly larger than unity on extinction boundaries, the shape of the lean extinction boundary is slanted even at low strain rate, i.e. $a_g=30s^{-1}$ and is more slanted in further increase of strain rate, implying that flame interaction on lean extinction boundary is strong and thus hydrogen (as a deficient reactant) Lewis number much less than unity plays an important role of flame interaction. It is also shown that effects of preferential diffusion of $H_2$ cause flame interaction to be stronger on lean extinction boundaries and weaker on rich extinction boundaries. Detailed analyses are made through the comparison between flame structures with and without the restriction of the diffusivities of $H_2$ and H in symmetric and asymmetric fuel compositions. The reduction of flammable fuel compositions in increase of strain rate suggests that the mechanism of flame extinction is significant conductive heat loss from the stronger flame to ambience.

제트확산화염 소화농도의 비정상 유동효과 (Unsteady Flow Effects on Extinguishing Concentrations in Jet Diffusion Flames)

  • 지정훈;오창보;이의주
    • 한국안전학회지
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    • 제24권6호
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    • pp.27-31
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    • 2009
  • An experimental study on the unsteady effect of the extinction limit was performed in ethene jet diffusion flames. To impose the unsteadiness on jet flames, the amplitude and frequency of a co-flow velocity was varied, and the two inert gases, $N_2$ and $CO_2$, were used to dilute the oxidizer for extinguishing concentration. The experimental results shows that large amplitude of velocity induces a low extinguishing concentration, which implies that flow variation affects the blow out mechanism. Also, the flow oscillation effects under high frequency attenuates the flame extinction. These results means that flow unsteadiness extends the extinction limit and finally minimum extinction concentration by inert gases. When the Stoke's 2nd Problem is introduced to explain the flow unsteadiness on extinction concentration, the solution predicts the effect of amplitude and frequency of velocity well, and hence it is concluded the effect of low frequency velocity excitation was attributed only to flow effect.