• 제목/요약/키워드: PFI(Port Fuel Injection)

검색결과 18건 처리시간 0.018초

직접분사식 바이오 에탄올-가솔린 혼합연료의 연료온도에 따른 분무 특성에 관한 실험적 연구 (An Experimental Study on Spray Characteristics of Directly Injected Bio-Ethanol-Gasoline Blended Fuel By Varying Fuel Temperature)

  • 이성욱;박기영;김종민;박봉규
    • 한국수소및신에너지학회논문집
    • /
    • 제25권6호
    • /
    • pp.636-642
    • /
    • 2014
  • As environment problem became a worldwide issue, countries are tightening regulations regarding greenhouse gas reduction and improvement of air pollution problems. With these circumstances, one of the renewable energies produced from biomass is getting attention. Bio-ethanol, which is applicable to SI engine, showed a positive effect on the PFI (Port Fuel Injection) type. However, Ethanol has a problem in homogeneous mixture formation because it has high latent heat of vaporization characteristics and in the GDI (Gasoline Direct Injection) type, mixture formation is required quickly after fuel injection. Particularly, South Korea is one of the countries with great temperature variation among seasons. With this reason, South Korea supply fuel additive for smooth engine operation during winter. Therefore, experimental study and investigation about application possibility of blending fuel is necessary. This paper demonstrates the spray characteristics by using the CVC direct injection and setting the bio-ethanol blending fuel temperature close to the temperature during each seasons: -7, 25, $35^{\circ}C$. The diameter and the width of the CVC are 86mm and 39mm. High-pressure fuel supply system was used for target injection pressure. High-speed camera was used for spray visualization. The experiment was conducted by setting the injection pressure and ambient pressure according to each temperature of bio-ethanol blending fuel as a parameter. The result of spray visualization experiment demonstrates that as the temperature of the fuel is lower, the atomization quality is lower, and this increase spray penetration and make mixture formation difficult. Injection strategy according to fuel temperature and bio-ethanol blending rate is needed for improving characteristics.

균일혼합기 가솔린 직분사 엔진의 다중 영역 유사차원 해석을 통한 배기 및 노킹 예측 (Quasidimensional Simulation with Multi-zone Combustion Model for Homogeneous GDI Engine Emissions and Knocking)

  • 이재서;허강열;권혁모;박재인
    • 한국연소학회지
    • /
    • 제18권1호
    • /
    • pp.7-12
    • /
    • 2013
  • A quasidimensional program is developed for a four stroke cycle homogeneous GDI (Gasoline Direct Injection) engine. It includes models for spray, burning rate and chemistry to predict knock and emissions. With early injection a homogeneous GDI engine goes through spark ignited, turbulent premixed combustion as in PFI (Port Fuel Injection) engines. The cylinder charge is divided into unburned and burned zone with the latter divided into multiple zones of equal mass to resolve temperature stratification. Validation is performed against measured pressure traces, NOx and CO emissions at different load and RPM conditions. Comparison is made between an empirical knock model and predictions by the chemistry model in this work.

직접분사식 가솔린 엔진의 분사전략 변경 및 EGR 적용을 통한 배기저감에 관한 연구 (Study on Emission Reduction with Injection Strategy and Exhaust-Gas Recirculation in Gasoline Direct Injection Engine)

  • 박철웅;김홍석;우세종;김용래
    • 대한기계학회논문집B
    • /
    • 제36권3호
    • /
    • pp.335-342
    • /
    • 2012
  • 자동차배출가스는 이산화탄소($CO_2$)에 의한 지구온난화 및 탄화수소(HC)와 질소산화물($NO_x$)에 의한 오존 생성을 야기하는 등, 인체와 환경에 나쁜 영향을 미치기 때문에 이에 대한 관심이 증폭되고 있다. 가솔린 직접분사 (Gasoline Direct Injection; GDI)엔진은 디젤엔진과 같이 연소실내에 연료를 직접 공급하는 방식으로서 가솔린엔진의 취약점으로 지적되어 오던 높은 연료소비율 문제를 획기적으로 개선할 수 있는 기술로 평가되고 있다. 본 연구에서는 분무유도방식(Spray-guided type)의 GDI엔진을 이용하여 공기과잉률 2.0 이상의 초희박 연소를 통해 연료소비율을 개선하였다. 추가적인 연료소비율 개선 및 배출가스 저감을 위해 희박연소시 다단 분사전략과 Exhaust Gas Recirculation (EGR)을 적용하였다. 배출가스 수준과 운전성능을 평가하고 이를 배출가스 규제와 비교 검토함으로써 국내 관련기술 개발 방향 및 상용화 가능성에 대해 검토하고자 하였다.

X선 위상차 가시화 기법을 이용한 GDI 인젝터 노즐 근방의 분무 간 상호간섭 해석 (Analyzing the Spray-to-spray Interaction of GDI Injector Nozzle in the Near-field Using X-ray Phase-Contrast Imaging)

  • 배규한;문석수
    • 한국분무공학회지
    • /
    • 제25권2호
    • /
    • pp.60-67
    • /
    • 2020
  • Despite its benefit in engine thermal efficiency, gasoline-direct-injection (GDI) engines generate substantial particulate matter (PM) emissions compared to conventional port-fuel-injection (PFI) engines. One of the reasons for this is that the spray collapse caused by the spray-to-spray interaction forms the locally rich fuel-air mixture and increases the fuel wall film. Previous studies have investigated the spray collapse phenomenon through the macroscopic observation of spray behavior using laser optical techniques, but it is somewhat difficult to understand the interaction between sprays that is initiated in the near-nozzle region within 10 mm from the nozzle exit. In this study, the spray structure, droplet size and velocity data were obtained using an X-ray imaging technique from the near-nozzle to the downstream of the spray to investigate the spray-to-spray interaction and discuss the effects of spray collapse on local droplet size and velocity distribution. It was found that as the ambient density increases, the spray collapse was promoted due to the intensified spray-to-spray interaction, thereby increasing the local droplet size and velocity from the near-nozzle region as a result of droplet collision/coalescence.

직분식 가솔린 인젝터의 분사 조건에 따른 분무 특성 분석 (An Investigation of the Spray Characteristics according to Injection Conditions for a Gasoline Direct Injector)

  • 이기형;이창식;이창희;류재덕;배재일
    • 한국자동차공학회논문집
    • /
    • 제9권5호
    • /
    • pp.89-95
    • /
    • 2001
  • Recently GDI(Gasoline Direct Injection) engine is spotlighted to achieve higher thermal efficiency under partial loads and better performance at full loads. To realize this system, it is essential to make both stratified combustion and homogeneous combustion. When compared to PFI(Port Fuel Injection) engine, GDI engine needs more complicated control and optimal design with injection system. In addition, spray pattern must be optimized according to injection timing because ambient pressure in combustion chamber is also varied. Thus spray structure should be analyzed in details to meet various conditions. In this experimental study, two types of visualization system were developed to simulate compression stroke and intake stroke, respectively. With an increase of the ambient pressure, the penetration length tends to decrease due to rising resistance caused by the drag force of the ambient air. Spray characteristics impinged on the piston has a significant effect on mixture stratification around the spark plug. These results provide the information on macroscopic spray structure and design factors far developing GDI injector.

  • PDF

STUDY OF CORRELATION BETWEEN WETTED FUEL FOOTPRINTS ON COMBUSTION CHAMBER WALLS AND UBHC IN ENGINE START PROCESSES

  • KIM H.;YOON S.;LAI M.-C.
    • International Journal of Automotive Technology
    • /
    • 제6권5호
    • /
    • pp.437-444
    • /
    • 2005
  • Unburned hydrocarbon (UBHC) emissions from gasoline engines remain a primary engineering research and development concern due to stricter emission regulations. Gasoline engines produce more UBHC emissions during cold start and warm-up than during any other stage of operation, because of insufficient fuel-air mixing, particularly in view of the additional fuel enrichment used for early starting. Impingement of fuel droplets on the cylinder wall is a major source of UBHC and a concern for oil dilution. This paper describes an experimental study that was carried out to investigate the distribution and 'footprint' of fuel droplets impinging on the cylinder wall during the intake stroke under engine starting conditions. Injectors having different targeting and atomization characteristics were used in a 4-Valve engine with optical access to the intake port and combustion chamber. The spray and targeting performance were characterized using high-speed visualization and Phase Doppler Interferometry techniques. The fuel droplets impinging on the port, cylinder wall and piston top were characterized using a color imaging technique during simulated engine start-up from room temperature. Highly absorbent filter paper was placed around the circumference of the cylinder liner and on the piston top to collect fuel droplets during the intake strokes. A small amount of colored dye, which dissolves completely in gasoline, was used as the tracer. Color density on the paper, which is correlated with the amount of fuel deposited and its distribution on the cylinder wall, was measured using image analysis. The results show that by comparing the locations of the wetted footprints and their color intensities, the influence of fuel injection and engine conditions can be qualitatively and quantitatively examined. Fast FID measurements of UBHC were also performed on the engine for correlation to the mixture formation results.

1.4L급 터보 CNG SI엔진의 전부하 운전 특성 및 열효율에 대한 연구 (Study on Full Load Operation Characteristics and Thermal Efficiency of 1.4L Turbo CNG SI Engine)

  • 배종원;박철웅;이정우;김용래;김창기;이선엽;이진욱
    • 한국가스학회지
    • /
    • 제22권6호
    • /
    • pp.34-39
    • /
    • 2018
  • 최근 탈석유 에너지 이행의 목표가 분명해지는 가운데 천연가스가 가교연료로서 주목받고 있다. 천연가스는 옥탄가가 높아 압축비를 높여도 노킹이 일어나지 않기 때문에 열효율과 출력을 두루 향상시킬 수 있을 뿐 아니라 기존 내연기관 하드웨어 시스템에 천연가스 공급 시스템 적용을 비교적 용이하게 할 수 있다. 본 연구에서는 승용 가솔린 직분사 터보 엔진을 천연가스 포트분사식 터보 엔진으로 개조하여 터보가 작동되는 운전 영역에서 대상 엔진의 연소 및 성능을 종합적으로 측정 및 비교하였다.

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
    • /
    • 제25권5호
    • /
    • pp.11-18
    • /
    • 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.