• 제목/요약/키워드: Combustion Characteristic

검색결과 461건 처리시간 0.034초

모형 가스터빈 연소기에서 희박 예혼합 화염의 연소 특성 및 유동 해석에 관한 연구 (A Study on Combustion Characteristics and Flow Analysis of a Lean Premixed Flame in Lab-Scale Gas Turbine Combustor)

  • 유혜연;김규보;전충환;장영준
    • 대한기계학회논문집B
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    • 제32권8호
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    • pp.574-581
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    • 2008
  • The characteristics of combustion and flow for a lean premixed flame in lab-scale gas turbine combustor was studied through experiment and numerical analysis. From the experiment, flame structure and heat release rate were obtained from OH emission spectroscopy. Qualitative comparisons were made line-integrated OH chemiluminescence image and abel-transformed one. NOx analyzer was implemented to get the characteristic of NOx exhaust from the combustor. From the numerical analysis, the thermal distribution and characteristic of recirculation zone with the change of fuel-air mixing degree, the characteristic of methane distribution with equivalence ratio in the combustor respectively. Total heat release rate is increased with increasing equivalence ratio. Thermal Nox is reduced with increasing fuel-air mixing degree. Increasing equivalence ratio results in the decrease of the size of reaction zone and alteration of the position of the reaction zone into the entrance of the combustor.

액화천연가스를 연료로 하는 시험용 액체로켓엔진의 성능해석 (Performance Analysis of the Experimental Liquid Rocket Engine using Liquefied Natural Gas as a Fuel)

  • 한풍규;이성웅;김경호;윤영빈
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2004년도 제22회 춘계학술대회논문집
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    • pp.198-204
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    • 2004
  • 액화천연가스를 연료로 사용하여 물 냉각 및 천연가스와 액화천연가스 재생냉각 연소시험을 수행하였다. 연소시험과 CEC86을 이용한 연소해석 결과를 액체로켓엔진 성능인자로서, 특성속도와 비추력 관점에서, 추진제 혼합비와 연료의 연소실 유입온도의 영향을 분석하였으며, 엔진성능이 추진제 혼합비와 연료의 연소실 유입온도의 영향을 크게 받고 있음을 알 수 있었다. 엔진 성능으로서 특성속도는 추진제 혼합비가 0.72∼0.75일 때, 이론적 비추력은 추진제 혼합비가 0.75일 때 최대 값을 보여주었으며, 연료의 연소실 유입온도의 증가에 비례하여 엔진 성능이 향상되는 경향에서 재생냉각이 엔진 성능을 증대시키는 경향을 확인하였다.

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하이브리드 로켓에서의 연료포트 직경에 따른 연소특성에 관한 연구 (A Study on Combustion Characteristic with Port-Diameter of fuel in Hybrid Rocket)

  • 이정표;조정태;김기훈;김수종;김학철;우경진;문희장;성홍계;김진곤
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년도 제31회 추계학술대회논문집
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    • pp.239-242
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    • 2008
  • 원통형 형상의 연료 그레인을 적용한 하이브리드 추진 시스템에서 연료포트 초기 직경에 따른 연소특성을 고찰하였다. 산화제에 따라 달라지는 연료포트 직경에 따른 연소특성 변화를 알아보고자 산화제로는 GOX와 $GN_2O$를 적용하였고, 고체연료로는 PE를 적용해 실험을 수행하였다. 동일 산화제 유량에서 산화제와 상관없이 고체연료의 초기 포트직경이 커짐에 따라 연소량이 감소함을 확인했고, 산화제로 $GN_2O$를 적용한 경우가 산화제로 GOX를 적용한 경우보다 연료포트 초기 직경에 따른 연소량 차이가 줄어듦을 확인하였다.

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정적연소기에서 토치의 체적 변화에 따른 메탄의 연소특성 파악 (A Study on Combustion Characteristic Methane Fuel according to Torch Volume Variation in a Constant Volume Combustion Chamber)

  • 권순태;박찬준;엄인용
    • 한국가시화정보학회지
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    • 제9권1호
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    • pp.42-48
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    • 2011
  • Six different size of torch-ignition device were applied in a constant volume combustion chamber for evaluating the effects of torch-ignition on combustion. The torch-ignition device was designed for six different volumes and same orifice size. The combustion pressures were measured to calculate the mass burn fraction and combustion enhancement rate. In addition, the flame propagations were visualized by shadowgraph method for the qualitative comparison. The result showed that the combustion pressure and mass burn fraction were increased when using the torch ignition device. And the combustion duration were decreased. The combustion enhancement rates of torch-ignition cases were improved in comparison with conventional spark ignition. Finally, the visualization results showed that the torch-ignition induced faster burn than conventional spark ignition due to the earlier transition to turbulent flame and larger flame surface, during the initial stage. Finally, the initial flame propagation was affected by torch-ignition volume.

액체로켓엔진 연소기용 단일 분사기 연소기와 축소형 연수고 수류/연소시험 결과 비교 (Comparison of Combustion Performance between Single Injector Combustor and Sub-scale Combustor)

  • 김승한;한영민;서성현;문일윤;이광진
    • 유체기계공업학회:학술대회논문집
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    • 유체기계공업학회 2006년 제4회 한국유체공학학술대회 논문집
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    • pp.451-454
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    • 2006
  • This paper describes the results of cold flow test and hot firing tests of an uni-element coaxial swirl injector and hot firing tests of a subscale combustor, as to the development effort of coaxial swirl injector for high performance liquid rocket engine combustor. A major design parameter for coaxial swirl injector is the recess number of a bi-swirl injector. The results of hot firing tests of the uni-element injector combustor and the sub-scale combustor are analyzed to investigate the effect of the recess number influencing on the combustion performance and pressure fluctuation. The test results of a cold flow test of the unielement combustor shows that it was shown that the change in recess number has significant effect on mixing characteristics and efficiency, while the effect of recess number on atomization characteristic is not The results of a series of firing tests using unielement and subscale combustor show that the recess length significantly affects the hydraulic characteristics, the combustion efficiency, and the dynamics of the liquid oxygen/kerosene bi-swirl injector. As a point of combustion performance, combustion efficiencies are 90% for unielement combustor and 95% for subscale combustor. The difference in the characteristic velocities between the unielement combustor and the subscale combustor may be caused by the difference in thermal loss to the combustor wall and the relative lengths of the combustion chamber. For a mixed type coaxial swirl combustor, the pressure drop across the injector increases as recess number becomes larger. The low frequency pressure fluctuation observed in unielement combustor can be related to the propellant mixing characteristics of the coaxial bi-swirl injector. The effect of the recess number on the pressure fluctuation inside the combustion chamber is more significant in un i-element combustor than the subscale combustor, of which the phenomena are also observed in time domain and frequency domain.

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직접분사식 바이오에탄올-가솔린 혼합연료의 분무 및 희박연소 특성에 관한 실험적 연구 (An Experimental Study on the Spray and Lean Combustion Characteristics of Bio-enthanol-Gasoline Blended Fuel of GDI)

  • 박기영;강석호;김인구;임철수;김재만;조용석;이성욱
    • 한국분무공학회지
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    • 제19권3호
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    • pp.115-122
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    • 2014
  • As a demand for an automobile increases, air pollution and a problem of the energy resources come to the fore in the world. Consequently, governments of every country established ordinances for green-house gas reduction and improvement of air pollution problem. Especially, as international oil price increases, engine using clean energy are being developed competitively with alternative transportation energy sources development policy as the center. Bio ethanol, one of the renewable energy produced from biomass, gained spotlight for transportation energy sources. Studies are in progress to improve fuel supply methods and combustion methods which are key features, one of the engine technologies. DI(Direct Injection), which can reduce fuel consumption rate by injecting fuel directly into the cylinder, is being studied for Green-house gas reduction and fuel economy enhancement at SI(Spark Ignition). GDI(Galoine Direct Injection) has an advantage to meet the regulations for fuel efficiency and $CO_2$ emissions. However it produces increased number of ultrafine particles, that yet received attention in the existing port-injection system, and NOX. As fuel is injected into the cylinder with high-pressure, a proper injection strategy is required by characteristics of a fuel. Especially, when alcohol type fuel is considered. In this study, we tried to get a base data bio-ethanol mixture in GDI, and combustion for optimization. We set fuel mixture rate and fuel injection pressure as parameters and took a picture with a high speed camera after gasoline-ethanol mixture fuel was injected into a constant volume combustion chamber. We figured out spraying characteristic according to parameters. Also, we determine combustion characteristics by measuring emissions and analyzing combustion.

복사열을 이용한 샌드위치 패널 심재의 연소특성 분석 (A Combustion Characteristic Analysis of Sandwich Panel Core Using Radiation Heat Flux)

  • 박형주
    • 한국화재소방학회논문지
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    • 제21권4호
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    • pp.25-31
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    • 2007
  • 본 연구에서는 샌드위치 패널 심재에 대한 연소열과 일정한 외부 복사열에 의한 연소특성을 분석하였다. 일정한 외부 복사열원에 노출된 샌드위치 패널 심재의 착화시간, 임계열유속, 착화온도, 시료 표면 온도의 변화를 측정하기 위해 3가지 Type의 시료를 사용하였으며, 연소열을 측정하기 위해 Oxygen bomb calorimeter를, 연소특성을 측정하기 위해 Mass loss calorimeter를 사용하였다. 연소특성을 측정하기 위해 $100\;mm{\times}100\;mm{\times}50\;mm$ 크기의 시료를 사용하였다. 연구결과, 연소열과 착화온도에 있어서 가장 좋은 특성을 갖는 것은 Type B인 반면 임계열유속과 시료 표면온도 변화에 있어서는 Type C에서 가장 좋은 특성을 나타내었다. 모든 연구 데이터를 종합한 결과 Type C가 가장 좋은 화재안정성을 나타낸다는 것을 알 수 있었다. 향후, 샌드위치 패널 심재에 대한 열방출률 특성과 질량감소속도에 대한 실험연구가 필요할 것으로 판단된다.

커먼레일 디젤엔진의 DME와 디젤연료의 분무 및 연소 특성 (Spray and Combustion Characteristics of DME and Diesel Fuel in a Common-Rail Diesel Engine)

  • 김명윤;하성용;이창식
    • 한국분무공학회지
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    • 제12권1호
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    • pp.30-37
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    • 2007
  • Dimethyl ether (DME) as an alternative fuel for compression ignition engine was investigated by measuring spray development processes, injection rate profiles, engine performance, and exhaust emission characteristics. The results of DME fueled engine were compared with those obtained by fueled with diesel. The experimental results showed that DME has approximately 0.03ms shorter injection delay and higher maximum injection rate than those of diesel fuel at a constant injection pressure of 50MPa. The spray visualization indicates that DME has shorter spray tip penetration due to its low density and faster evaporation. The combustion characteristics of DME operated engine provided faster ignition delay and three times shorter combustion duration. It is believed that the better evaporation and atomization characteristic of DME contributes the faster combustion. At all operating condition, soot emission was not detected due to the clean combustion of DME.

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주기적 불안정성을 가지는 충격파 유도 연소의 무차원 해석 (Nondimensional Analysis of Periodically Unstable Shock-Induced Combustion)

  • 최정열;정인석;윤영빈
    • 한국연소학회지
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    • 제1권2호
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    • pp.41-49
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    • 1996
  • A numerical study is conducted to investigate the periodically unstable shock induced combustion around blunt bodies in stoichiometric hydrogen-air mixtures. Euler equations are spatially discretized by upwind-biased third order scheme and temporally integrated by Runge-Kutta method. Chemistry model used in this study involves 8 elementary kinetics steps and 7 species. At a constant Mach number, the effects of projectile size, inflow pressure and inflow temperature are examined with Lehr#s experimental condition as a reference. In addition to oscillation frequency, characteristic distances and time averaged values are found from the result to find an relation with dimensionless parameters. As a result, it is found that the effects of inflow pressure and body size are very similar and $Damk{\ddot{o}}hler$ number plays an important role in determining the instability characteristics.

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LPG 정적연소실내 점화특성에 관한 연구 (A Study on the Ignition Characteristics at Constant Volume Combustion Chamber of LPG)

  • 박경석
    • 한국자동차공학회논문집
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    • 제12권3호
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    • pp.75-82
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    • 2004
  • The allowable exhaust standard has been intensified as a part of the countermeasure to decrease air pollution in the world. As the cars with an alternative fuel starts to get into the spotlight, the cars with low emission has been introduced and exhaust gas regulation forced in this country. These days, LPG vehicles, which infrastructure of fuel was already built up, and CNG vehicles are recognized for alternative fuel cars in this country. In this study, the constant volume combustion chamber was manufactured and used for experiments to obtain the ignition characteristics of LPG fuel and the optimal ignition energy. The experiment measured the combustion characteristics, in regard to the change of combustion variable, and the change of ignition energy. During the combustion of fuel, the maximum temperature inside the combustion chamber is higher when the initial pressure is higher. The burning velocity also seems to have the same characteristic as the temperature. However, the heat flux did not change much with the theoretical correct mixture but the various initial temperature of the combustion chamber. The heat flux got faster and ignition energy bigger as the dwell time of the ignition system expanded. When the dwell time get longer, the ignition energy also increased then fixed. The ignition energy increased as the initial pressure inside the combustion chamber higher. The heat flux got faster as the dwell time expanded.