• 제목/요약/키워드: 가솔린 직접분사 기관

검색결과 17건 처리시간 0.019초

연소실 직접분사식 성층급기 가솔린기관의 구동안정성에 관한 연구 -열방출율과 도시평균유효압력 변동에 미치는 연료분사압력과 부하변동의 영향- (A Study on Driving Stability of In-cylinder Direct Injection Stratified Charge Gasoline Engine - Effects on HR rate and $COV_{imep}$ of Fuel Injection Pressure and Load Variations -)

  • 이상만;이근오
    • 한국안전학회지
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    • 제13권3호
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    • pp.3-10
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    • 1998
  • In general, the stratified charge for direct injection gasoline engine should be introduced to achieve ultra-lean combustion scheme. In order to apply the concept of stratified charge into direct injection gasoline engine, a reflector was adapted on cylinder head. An installation of the reflector in front of the injector nozzle leads the mixture to be rich near spark plug. Therefore, the mixture near the spark plug is locally ich to ignite while the lean mixture is wholly introduced into the combustion chamber. In this paper, the characteristics of combustion is analyzed with the variations of injection pressure and load in a stratified-charge direct injection single cylinder gasoline engine.

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직분식 가솔린기관 내에서 피스톤 형상이 연료혼합기 거동에 미치는 영향 (The Effect of Piston Bowl Shape on Behavior of Vapor Phase in a GDI Engine)

  • 황필수;강정중;김덕줄
    • 대한기계학회논문집B
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    • 제26권4호
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    • pp.614-621
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    • 2002
  • This study was performed to investigate the behavior of vapor phase of fuel mixtures with different piston bowl shapes(F, B and R-type) in a optically accessible engine. The images of liquid and vapor phases were captured in the motoring engine using exciplex fluorescence method. Fuel was injected into atmospheric nitrogen to prevent quenching phenomenon by oxygen. Injection pressure was 5.1MPa. Two dimensional spray fluorescence image of vapor phase was acquired to analyze spray behaviors and fuel distribution inside of cylinder. Four injection timings were set at BTDC 90$^{\circ}$, 80$^{\circ}$, 70$^{\circ}$, and 60$^{\circ}$. With a fuel injection timing of BTDC 90$^{\circ}$, fuel-rich mixture level in the center region was highest in a B-type piston. With a fuel injection timing of BTDC 60$^{\circ}$, R-type piston was best. R-type piston shape was suitable under enhanced swirl ratio and late injection condition and B-type piston shape was right in a weak swirl ratio. It was found that the piston bowl shape affected the mixture stratification inside of cylinder.

피스톤 형상에 따른 직분식 가솔린기관 내에서의 연료혼합기 거동특성 연구 (The Effect of Piston Bowl Shape on Behavior of Vapor Phases in a GDI Engine)

  • 황필수;강정중;김덕줄
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 추계학술대회논문집B
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    • pp.915-920
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    • 2001
  • This study was performed to investigate the behavior of vapor phase of fuel mixtures with different piston bowl shapes(F, B, and R-type) in a optically accessible engine. The images of liquid and vapor phases were captured in the motoring engine using exciplex fluorescence method. Fuel was injected into atmospheric nitrogen to prevent quenching phenomenon by oxygen. Injection pressure is 5.1MPa. Two dimensional spray fluorescence image of vapor phases was acquired to analyze spray behaviors and fuel distribution inside of cylinder. Four injection timings were set at BTDC $90^{\circ},\;80^{\circ},\;70^{\circ},\;and\;60^{\circ}$. With a fuel injection timing of BTDC $90^{\circ}$, fuel-rich mixture level in the center region was highest in a B-type piston. With a fuel injection timing of BTDC $60^{\circ}$, R-type piston was best. R-type piston shape was suitable under enhanced swirl ratio and late injection condition and B-type piston shape was right in a weak swirl ratio. It was found that the piston bowl shape affected the mixture stratification inside of cylinder.

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스월형 GDI 엔진의 연료혼합특성 연구 (Aspects of Mixture Formation in a Swirl Type GDI Engine)

  • 김기성;박상규
    • Journal of Advanced Marine Engineering and Technology
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    • 제27권2호
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    • pp.260-271
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    • 2003
  • For the Purpose of understanding the mixing phenomena of a GDI(Gasoline Direct Injection) engine, the spray behaviors and fuel distributions were investigated in a single cylinder transparent GDI engine. The experimental engine is a swirl type GDI engine with a SCV(Swirl Control Valve). PLIF(Planar Laser Induced Fluorescence) system with KrF Excimer laser was used for the measurement of the fuel distributions. The effects of SCV opening angles and the injector specifications on the fuel distribution characteristics were investigated. As a result, it was found that the SCV opening angle had a great effect on the fuel distributions in the late stage of compression process by changing the flow fields in the combustion chamber.

3-연소실형 GDI Engine의 성능 및 배기 배출물 특성에 관한 연구 (Study on the Characteristics of Performance and Exhaust Emissions of 3-Chamber GDI Engine)

  • 김봉수;정남훈;진선호;배종욱
    • Journal of Advanced Marine Engineering and Technology
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    • 제26권1호
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    • pp.37-47
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    • 2002
  • Recently gasoline direct injection method has been applied to gasoline engine to reduce fuel consumption rate by controlling fuel air mixture on lean condition by means of stratified charging, and to reduce simultaneously. Pollutant emissions especially NOx and CO by lowering the combustion temperature. But difficulty of controling local fuel air ratio at ignition area in flammability limit unavoidably appeared, because it is merely controlled by injection timing with spatial and temporal distribution of fuel mixture. In this study, the authors devised a uniquely shaped combustion chamber so called three-chamber GDI engine, intended to keep the more reliable fuel air ratio at ignition area. The combustion chamber is divided into three regions. The first region is in the rich combustion division, where the fuel is injected from the fuel injection valve and ignited by the spark plug. The second region is in the lean combustion division, where the combustion gas from the rich combustion division flows out and burns on lean condition. And the last region is in the main combustion division ie in the cylinder, where the gas from the above two combustion divisions mixed together and completes the combustion during expansion stroke. They found that the stable range of operation of three-chamber GDI engine on low-load condition exists in the lean area of average equivalence ratio. And they also found that the reformed engine reveals less specific fuel consumption and less pollutant emissions compared with conventional carburettor type gasoline engine.

2 L급 수소 직접분사 전기점화 엔진의 워밍업 시 공기과잉률에 따른 질소산화물 배출 및 연료 소모율에 대한 실험적 분석 (Effect of Varying Excessive Air Ratios on Nitrogen Oxides and Fuel Consumption Rate during Warm-up in a 2-L Hydrogen Direct Injection Spark Ignition Engine)

  • 하준;김용래;박철웅;최영;이정우
    • 한국가스학회지
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    • 제27권3호
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    • pp.52-58
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    • 2023
  • 지구 기상이변에 대해 탄소중립의 중요성이 대두됨에 따라 무탄소 연료인 수소의 에너지원으로서의 활용도 역시 증대되고 있다. 일반적으로 수소는 연료전지(FC, Fuel Cell)에 활용되고 있으나, 이는 연소를 기반으로 하는 내연기관(ICE, Internal Combustion Engine)에도 활용될 수 있다. 특히 연료전지만으로 수소 활용 및 인프라 확장이 어려운 때에 이미 생산 측면이나 공급 측면에서 인프라가 기 구축되어 있는 내연기관은 수소 에너지 저변 확대에 큰 도움을 줄 수 있다. 다만 수소를 연소기반으로 활용할 경우 고온에서 공기 중 질소가 산소와 반응하여 유해배기물질인 질소산화물(NOx, Nitrogen Oxides)이 생성될 수 있는 단점은 존재한다. 특히 냉간 (Cold Start) 운전 영역시 포함될 EURO-7 배기규제의 경우 워밍업(Warm-up) 과정에서 발생하는 배기배출물의 저감을 위한 노력도 필요하다. 따라서 본 연구에서는 2 L급 수소 직접분사방식 전기점화 (SI, Spark Ignition) 엔진을 활용하여 냉각수를 상온에서 88 ℃로 워밍업하는 과정에서 질소산화물 및 연료소모율의 변화 특성을 살펴보았다. 특히 수소는 기존의 가솔린, 천연가스, 액화석유가스(LPG, Liquified Petroleum Gas)와 달리 가연범위(Flammable range)가 넓기 때문에 공기과잉률(Excessive air ratio)을 희박하게 조절할 수 있다는 장점이 있다. 이에 본 연구에서는 워밍업하는 과정에 있어서 공기과잉률을 1.6/1.8/2.0으로 변화하여 그 결과를 분석하였다. 본 실험의 결과는 워밍업 시 공기과잉률이 희박해질수록 시간당 질소산화물의 배출이 적고, 열효율도 상대적으로 높으나 최종 온도까지 도달 시간이 길어짐에 따라 누적 배출량 및 연료소모율은 악화될 수도 있음을 시사한다.

수소 내연기관의 흡기 냉각 방법에 따른 최고 출력 향상에 관한 연구 (Effects of Intake Gas Mixture Cooling on Enhancement of The Maximum Brake Power in a 2.4 L Hydrogen Spark-ignition Engine)

  • 김용래;박철웅;오세철;최영;이정우
    • 한국가스학회지
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    • 제25권5호
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    • pp.11-18
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    • 2021
  • 수소는 동일한 공연비(AF ratio, Air-to-fuel ratio)에서 가솔린에 비해 점화에너지가 현격히 낮기 때문에, 희박한 혼합기 조건에서도 안정적으로 연소할 수 있는 장점을 가지고 있어 연소를 기반으로하는 내연기관에도 적용이 가능하다. 그러나 일부 연소조건에서 역화(Back-fire) 혹은 조기 점화(Pre-ignition)와 같은 이상 연소가 발생하기 쉬운 문제를 가지고 있다. 따라서 본 연구에서는 엔진의 흡기(Intake gas mixture)를 구성하는 신기(Fresh air)와 수소 연료를 각각 냉각하여 공급함으로써, 역화를 최소화하여 최고 출력을 향상하는 연구를 진행하였다. 2.4 L급 전기점화(SI, Spark-ignition)엔진이 사용되었으며 수소는 포트분사 방식(PFI, Port Fuel Injection)으로 공급하였다. 신기의 온도는 터보차저가 장착된 상황에서 인터쿨러(Intercooler)를 이용하여 제어하였으며, 수소의 냉각은 칠러의 냉매와 열교환기를 통하여 직접 냉각 후 공급하였다. 그 결과 신기의 온도를 10~20 ℃가량 냉각시킬 경우 최고출력이 약 6.5~8.6 % 가량 향상되는 것을 확인할 수 있었으며, 수소를 -6 ℃까지 냉각하여 공급할 경우 마찬가지로 약 7.7 % 가량의 최고 출력을 향상할 수 있었다.