• 제목/요약/키워드: Soot Formation

검색결과 132건 처리시간 0.022초

고온ㆍ고압 정적 연소기내 난류 프로판 예혼합 화염의 매연생성에 관한 연구 (A Study on Soot Formation of Turbulent Premixed Propane Flames in n Constant-Volume Combustor at High Temperatures and High Pressures)

  • 배명환
    • 한국자동차공학회논문집
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    • 제9권4호
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    • pp.1-9
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    • 2001
  • The soot yield has been studied by a premixed propane-oxygen-inert gas combustion in a specially designed disk-type constant-volume combustion chamber to investigate the effects of pressure, temperature and turbulence on soot formation. Premixtures are simultaneously ignited by eight spark plugs located on the circumference of chamber at 45 degree intervals in order to observe the soot formation under high pressures. The eight flames converged compress the end gases to a high pressure. The laser schlieren and direct flame photographs for observation field with 10 mm in diameter are taken to examine into the behaviors of flame front and gas flow in laminar and turbulent combustion. The soot volume fraction in the chamber center during the final stage of combustion at the highest pressure is measured by the in situ laser extinction technique and simultaneously the corresponding burnt gas temperature by the two-color pyrometry method. The pressure and temperature during soot formation are changed by varying the initial charge pressure and the volume fraction of inert gas compositions, respectively. It is found that the soot yield increases with dropping temperature and rising pressure at constant equivalence ratio, and that the soot yield of turbulent combustion decreases in comparison with that of laminar combustion because the burnt gas temperature increases with the drop of heat loss.

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압력조건에서 공기로 희석된 프로판 확산화염의 매연 생성과 산화 특성 (Soot Formation and Oxidation in Air-Diluted Propane Diffusion Flames under Elevated Pressures)

  • 배승만;남연우;이원남
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2012년도 제44회 KOSCO SYMPOSIUM 초록집
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    • pp.267-268
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    • 2012
  • Soot formation and oxidation characteristics of air-diluted propane diffusion flames have been experimentally investigated under the elevated pressure conditions. PAH concentrations showed more pressure sensitive behavior comparing to soot volume fractions. The flame/soot temperatures in soot oxidation region were obtained using the MOLLIP technique. Under the complete soot oxidation environment, the flame/soot temperature is increased with pressure. The increased temperature could accelerate the soot oxidation process and then exothermic oxidation reaction, in turn, could further raise the flame/soot temperature, which would result in the enhancement of soot oxidation process.

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레이저 가열 위치에 따른 확산화염의 매연생성 및 산화 특성 변화 (The Effects of Laser Heating on the Soot Formation and Oxidation of a Diffusion Flame)

  • 이원남;남연우;이춘범;신현동
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2004년도 제28회 KOSCO SYMPOSIUM 논문집
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    • pp.112-117
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    • 2004
  • The effects of laser heating on soot formation and oxidation of propylene diffusion flames have been studied experimentally under nearly sooting conditions. The non-sooting flame can be converted to a sooting flame when the laser light heats up a flame at 7 mm height, while a sooting flame can be changed to a non-sooting flame when a flame is heated with laser light at flame height of 13 mm. The selective heating at the soot formation and/or oxidation region determines the sooting behavior of a diffusion flame. The increased soot/flame temperatures are most likely to be responsible for both the decreased and increased soot formation/oxidation.

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Numerical Modeling for Combustion and Soot Formation Processes in Turbulent Diffusion Flames

  • Kim, Hoo-Joong;Kim, Yong-Mo
    • Journal of Mechanical Science and Technology
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    • 제16권1호
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    • pp.116-124
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    • 2002
  • In order to investigate the soot formation and oxidation processes, we employed the two variable approach and its source terms representing soot nucleation, coagulation, surface growth and oxidation. For the simulation of the taxi-symmetric turbulent reacting flows, the pressure-velocity coupling is handled by the pressure based finite volume method. We also employed laminar flamelet model to calculate the thermo-chemical properties and the proper soot source terms from the information of detailed chemical kinetic model. The numerical and physical models used in this study successfully predict the essential features of the combustion processes and soot formation characteristics in the reacting flow field.

동축류 확산화염에서 질소첨가가 Soot발생에 미치는 영향 (Dilution and Thermal Effects of N2 Addition on Soot Formation in Co-flow Diffusion Flame)

  • 엄재호;이종호;전충환;장영준
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2002년도 제24회 KOSCO SYMPOSIUM 논문집
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    • pp.185-191
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    • 2002
  • The influence of N2 addition on soot formation, flame temperature and NOx emissions is investigated experimentally with methane fuel co-flow diffusion flames. The motivation of the present investigation is the differences in NOx reduction reported between fuel-side and oxidizer-side introduction of N2. To determine the influence of dilution alone, fuel was diluted with nitrogen while keeping the adiabatic flame temperature fixed by changing the temperature of the reactants. And to see the thermal effect only, air was supplied at different temperature without N2 addition. N2 addition into fuel side suppressed the soot formation than the case of oxidizer-side, while flame temperature enhanced the soot formation almost linearly. These results reveals the relative influences of the thermal, concentration effects of N2 additives on soot formation In accordance with experimental study, numerical simulation using CHEMKIN code was carried out to compare the temperature results with those acquired by CARS measurement, and we could find that there is good agreement between those results. Emission test revealed that NOx emissions were affected by not only flame temperature but also N2 addition.

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층상구조 에틸렌/프로판 동축류화염의 매연 생성 특성 (Soot Formation Characteristics of Concentric Ethylene/Propane Co-flow Diffusion Flames)

  • 이원남;구본승
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2001년도 제23회 KOSCO SYMPOSIUM 논문집
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    • pp.27-34
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    • 2001
  • The soot formation characteristics have been studied experimentally in concentric co-flow ethylene/propane diffusion flames. Comparing to the homogeneously mixed propane/ethylene case, the increase of soot formation is observed when propane is supplied through the outer nozzle, while the decrease is observed when propane is supplied through the inner nozzle. The reaction path of PAHs formed from the pyrolysis process of propane is likely to be responsible to the observed difference. When propane is supplied through the outer nozzle, PAHs formed during the combustion process are easy to be exposed to the oxidization environment; however, when propane is supplied through the inner nozzle, PAHs are not likely to be oxidized and thus get involved in soot formation process. The synergistic effect in ethylene/propane diffusion flames is affected not only by the composition of mixture but also by the way of mixing.

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WSR에서 매연 생성에 관한 CO 첨가 효과 (Effects of CO Addition on Soot Formation in the Well Stirred Reactor)

  • 정태희;이의주
    • 한국화재소방학회논문지
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    • 제26권5호
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    • pp.35-40
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    • 2012
  • 본 연구에서는 WSR에서 혼합기의 CO첨가 효과에 따른 매연의 생성특성을 규명하기 위하여 수치해석 연구를 수행하였다. 연료는 에틸렌을 사용하였으며, 산화제는 순수 공기를 이용하였다. 서로 다른 당량비 조건(${\phi}$=2.0, 2.5, 3.0)에서 CO의 농도를 변화시켜가며 매연 생성 특성을 조사하였다. 10 %의 CO 첨가 경우에는 가장 작은 양의 CO를 유입하는데도 불구하고, 배출되는 CO의 몰분율이 다른 당량비 경우에 비해서 최대값을 나타낸다. 이는 초기 매연이 생성되는 지점에서는 매우 적은량의 CO가 매연이나 다른 탄소화합물로 변화함을 의미한다. 매연부피분율은 CO의 첨가량이 증가함에 따라 감소되는데 매연생성에서 중요 화학종인 pyrene과 아세틸렌의 생성이 CO의 첨가에 의해 저하되기 때문이다. 또한 당량비가 2.5인 경우에 가장 많은 매연이 생성됨을 확인 할 수 있는데, 이는 연료과잉조건과 연소온도의 적절한 기여로서 설명되어 질 수 있다. 또한, 표면성장율과 중요 화학종의 농도는 매연생성에 대한 HACA(hydrogen abstraction and carbon addition)기구를 정당화한다.

에틸렌/프로판 대향류 확산화염에서 매연생성특성에 대한 실험적 연구 (Soot formation in Counterflow diffusion of ethylene/propane mixtures)

  • 윤승석;이상민;황준영;정석호
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2000년도 제21회 KOSCO SYMPOSIUM 논문집
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    • pp.229-235
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    • 2000
  • Soot formation characteristics in counterflow diffusion flames of ethylene/propane/nitrogen mixtures have been studied experimentally to investigate the soot formation mechanism. The effect of HACA reaction on PAH and soot growth has been experimentally investigated by using 2-D planar LII and PAH LIF techniques.

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대향류 에틸렌/공기 비예혼합 화염의 구조 및 Soot 생성 메커니즘 해석 (Numerical Analysis for the Detailed Structure and the Soot Formation Mechanism in Counterflow Ethylene-Air Nonpremixed Flame)

  • 임효준;김후중;김용모
    • 한국자동차공학회논문집
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    • 제7권5호
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    • pp.40-54
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    • 1999
  • The flame structure and soot formation in the counterflow Ethylene-Air nonpremixed flame are numerically analyzed. The present soot reaction mechanism involves nucleation, surface growth, particle coagulation, and oxidation steps. The gas phase chemistry and the soot nucleation, surface growth reactions are coupled by assuming that the nucleation and soot mass growth has the certain relationship with the concentration of benzene and acetylene. In terms of the centerline velocity and the soot volume fraction, the predicted results are compared with the experimental data. The detailed discussion has been made for the sensitivity of model constants and the deficiencies of the present model. Numerical results indicated that the acetylene addition to the soot surface plays the dominant role in the soot mass growth for the counterflow nonpremixed flame.

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층류확산화염에서 질소 첨가와 예열온도가 매연 생성에 미치는 영향 (The Effects of N2 Diluent and Preheated Air on Soot Emission in Laminar Diffusion Flames)

  • 정용기;이종호;전충환;장영준
    • 대한기계학회논문집B
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    • 제28권1호
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    • pp.1-8
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    • 2004
  • An study has been performed with axisymmetric coflow diffusion flames to investigate the influence of air-side fuel side dilution and initial preheated temperature on the soot formation in methan/air flames. Soot quantities are determined by using PLII(Planar Laser Induced Incandescence), such a $C_2$H$_2$ major species(CH$_4$, $O_2$, $N_2$) and temperature are simulated by chemkin code. The numerical analysis was performed with transport properties and detailed reaction mechanisms m axisymmetric coflow diffusion flames. The study of how flame temperature and $N_2$ dilution of air and fuel side influence the soot concentrations is focused. Soot concentrations results on PLII show that preheated temperature contributes to an increase in the soot volume fraction, and soot formation Is more productive to air side dilution than to fuel side dilution. $C_2$H$_2$ concentrations have a similar tendency to soot concentrations.