• Title/Summary/Keyword: Reduced fuel

검색결과 1,161건 처리시간 0.024초

유로 단면 부분 폐쇄가 액체로켓엔진 성능 변화에 미치는 영향 (The Effect of Partial Blockage of Flow Passage to Performance Change of a Liquid Rocket Engine)

  • 조원국
    • 항공우주시스템공학회지
    • /
    • 제9권4호
    • /
    • pp.67-72
    • /
    • 2015
  • The analysis has been performed on the blockage effect at the propellant flow passage in a liquid rocket engine. This simulates an example of emergency situation where flow passage is partially blocked. The analysis method has been validated by predicting the pump head and flow rate within 1% precision against the measured data of turbopump-gas generator coupled test. When the oxidizer passage is reduced it is predicted that the mixture ratio decreases, the oxidizer pump head increases and the gas generator pressure increases. When the fuel passage is reduced it is predicted that the mixture ratio increases, fuel flow rate decreases and the fuel pump head increases.

이중 콘형 부분예혼합 GT 연료노즐의 연소특성 및 발전플랜트 실증 (Combustion Characteristics and On-site Performance Test of a Double-cone Partial Premixed Nozzle with Various Fuel hole Patterns)

  • 김한석;조주형;김민국;황정재;이원준;민경욱;강도원
    • 한국가스학회지
    • /
    • 제25권6호
    • /
    • pp.22-28
    • /
    • 2021
  • 발전용 가스터빈에 사용되는 이중 콘형 예혼합 연소기의 성능 개선 및 검증을 위하여 기존 노즐에서 연료 분사 특성을 개선한 노즐(분사구 직경 증가, 분사구 수 감소, 총 분사면적 유지)을 이용하여 고압 및 다중화염 조건에서 실험 연구를 수행하였으며 배기가스 특성을 기존 노즐과 비교하였다. 실험 결과로는 노즐의 연료 직경을 크게 한 경우 연소용 공기로 연료의 침투 거리가 증가하기 때문에 콘 내부에서 연료와 공기의 혼합특성이 개선되어 상압뿐만 아니라 압력 상승 시 NOx 배출 농도는 감소하며 다중 화염의 경우 화염간 연소영역의 중첩이 감소하게 되어 NOx 배출은 감소하지만 화염 안정성은 저하된다. 연료 분사구를 개선한 노즐의 발전 플랜트 실증 결과는 실험 결과와 같이 기존 노즐에 비하여 NOx 농도가 낮게 배출되었다.

모사 디젤 화학반응 메커니즘의 각 성분이 화학적 점화 지연 시간에 미치는 영향에 관한 기초 연구 (Fundamental Study on the Chemical Ignition Delay Time of Diesel Surrogate Components)

  • 김규진;이상열;민경덕
    • 한국자동차공학회논문집
    • /
    • 제21권3호
    • /
    • pp.74-81
    • /
    • 2013
  • Due to its accuracy and efficiency, reduced kinetic mechanism of diesel surrogate is widely used as fuel model when applying 3-D diesel engine simulation. But for the well-developed prediction of diesel surrogate reduced kinetic mechanism, it is important to know some meaningful factors which affect to ignition delay time. Meanwhile, ignition delay time consists of two parts. One is the chemical ignition delay time related with the chemical reaction, and the other is the physical ignition delay time which is affected by physical behavior of the fuel droplet. Especially for chemical ignition delay time, chemical properties of each fuel were studied for a long time, but researches on their mixtures have not been done widely. So it is necessary to understand the chemical characteristics of their mixtures for more precise and detailed modeling of surrogate diesel oil. And it shows same ignition trend of paraffin mixture with those of single component, and shorter ignition delay at low/high initial temperature when mixing paraffin and toluene.

발전용 바이오중유의 혼합비율에 따른 배출가스 특성 연구 (A Study on the Emission Characteristics for Blended Power Bio-Fuel Oil)

  • 하종한;전철환;권용재
    • 한국수소및신에너지학회논문집
    • /
    • 제26권5호
    • /
    • pp.484-492
    • /
    • 2015
  • As our government is actively introducing the RPS (Renewable Portfolio Standards) as a national renewable energy obligation policy, power producers are using the various renewable energy to meet the RPS supply quota since 2012. Recently, it is appling to use power bio-fuel oil in bio-fuel oil demonstration project with power companies. In general, power bio-fuel oils are composed of mixture products of vegetable oil, animal fat, fatty acid ester and waste oil. It is already developing for a power plant as a renewable energy abroad. In Korea, it is studying a 100% combustion and blended combustion of heavy fuel oil and bio-fuel oil. In this study, we investigated fuel characteristics of mixed power bio-fuel oil and its emission performance. Especially, it was reduced emissions of bio-oil in industrial boilers due to bio-fuel properties as compare with fuel oil.

디젤기관에세 DMM 첨가와 EGR 방법 적용에 의한 기관성능 및 매연과 NOx의 동시저감 연구 (A Study on Performance and Simultaneous Reduction of Smoke and NOx Emission by an DMM Addition and Application of EGR Method in a Diesel Engine)

  • 오영택;최승훈
    • 대한기계학회논문집B
    • /
    • 제30권3호
    • /
    • pp.208-214
    • /
    • 2006
  • Dimethoxy methane$(CH_3-O-CH_2-O-CH_3)$, also known as methylal or DMM, is an oxygenated additive that contains 42.5% oxygen by weight and is soluble in diesel fuel. It is a colorless liquid and a gas-to-liquid chemical 방tat has been evaluated for use as a diesel fuel component. Experiments were conducted by using the five blends with different volumetric percentage of DMM(2.5, 5, 7.5, 10, and 12.5%) in baseline diesel fuel. The test engine was single cylinder, four stroke, DI diesel engine unmodified. Also, data was collected for steady state operation at 24 engine speed-load conditions. The focus of this study was to investigate the effects of the addition of oxygenated fuel to diesel fuel on the engine-out emissions and the performance. Smoke emissions of all DMM blends were reduced substantially in comparison with conventional diesel fuel. These results indicate that DMM may be an effective blendstock for diesel fuel as an environment-friendly alternative fuel. Besides, this study showed that simultaneous reduction of smoke and NOx emissions could be achieved by oxygenated fuel and EGR method that was applied to decrease NOx emissions increasing with smoke emissions reduction.

저 기화성 연료를 사용한 직접분사식 과급 가솔린엔진에서 전 부하 스모크 저감을 위한 시스템 최적화에 관한 연구 (An Experimental Analysis for System Optimization to Reduce Smoke at WOT with Low Volatile Fuel on Turbo GDI Engine)

  • 김도완;이승환;임종석;이성욱
    • 한국자동차공학회논문집
    • /
    • 제23권1호
    • /
    • pp.97-104
    • /
    • 2015
  • This study is a part of the high pressure injection system development on the Turbo GDI engine in order to reduce smoke emission in case of using the low volatile(high DI) fuel which is used as normal gasoline fuel in the US market. Firstly, theoretical approach was done regarding gasoline fuel property, performance, definition of particle matters and its creation as well as problems of the high DI fuel. In this experimental study, 2L Turbo GDI engine was selected and optimized system parameter was inspected by changing fuel, fuel injection mode (single/multiple), fuel pressure, distance between injector tip and combustion chamber, start of injection, intake valve timing in engine dyno at all engine speed range with full load. In case of normal gasoline fuel, opacity was contained within 2% in all conditions. On the other hands, in case of low volatile fuel (high DI fuel), it was confirmed that the opacity was rapidly increased above 5,000 rpm at 14.5 ~ 20 MPa of fuel pressure and there were almost no differences on the opacity(smoke) between 17 MPa and 20 MPa fuel pressure. According to the SOI retard, smoke decrease tendency was observed but intake valve close timing change has almost no impact on the smoke level in this area. Consequently, smoke decrease was observed and 16% at 6000rpm respectively with injector washer ring installed. By removing injector washer to make injector tip closer to the combustion chamber, smoke decrease was observed by 46% at 5,500 rpm, 42% at 6,000 rpm. It is assumed that the fuel injection interaction with cylinder head, piston head, intake and exhaust valve is reduced so that impingement is reduced in local area.

대형 디젤 엔진에서 최적 성능 도출을 위한 연료 분사 전략에 관한 연구 (Fuel Injection Strategy for Optimized Performance in Heavy-Duty Diesel Engine)

  • 이진우
    • 한국산학기술학회논문지
    • /
    • 제20권10호
    • /
    • pp.33-39
    • /
    • 2019
  • 대형 디젤 엔진에서 NOx, Smoke 등의 배기가스 저감과 연비를 개선하는 것은 주요한 개발 목표이다. 이 목표를 달성하기 위한 다양한 방식 중 연료를 분할하여 분사하는 다단 분사 전략은 주요하게 적용되고 있다. 본 연구에서는 다양한 조건의 다단분사 전략을 적용하여 배기가스, 연비 그리고 연소 소음 관점에서 최적의 성능을 확보할 수 있는 조건을 확인하여 개선정도를 확인하고자 하였다. 1단 파일럿 적용 시, 단일 분사 대비 NOx 저감이 가능한 영역이 있으나, Smoke가 악화되는 문제가 확인되었다. 2단 파일럿 적용 시, 최대 NOx와 Smoke를 각각 73%, 84%까지 저감할 수 있었다. 연소 소음은 최대 압력 상승률 분석을 통해, 또한 연료소비율은 도시 연료 소비율을 계산하여 단일 분사와 비교하여 개선수준을 평가하였다. 이를 통해 15%:15% 2단 파일럿 전략 적용 시, 단일 분사 대비 NOx 32.9%, Smoke 60.4%, 연비 1.95%, 연소소음 19.3%의 개선을 이룰 수 있음을 확인하였다. 향후, 본 연구 결과를 기반으로 운전 영역을 확장하여 각 조건에서의 최적 연료 분사 방식 도출을 통해 전체적인 성능개선을 구현하고자 한다.

질량법칙을 이용한 연료펌프 특정음 저감 방법 (Particular Noise Reduction Method used to Mass Law)

  • 강태식;심재기
    • 한국소음진동공학회:학술대회논문집
    • /
    • 한국소음진동공학회 2004년도 춘계학술대회논문집
    • /
    • pp.759-763
    • /
    • 2004
  • High frequency noise of fuel pump has does claimed by user. But high frequency of fuel pump can't heat in the car. But this noise Is an offensive noise outside car. In this study is noise reduction used to mass law. Especially high frequency (for example BPF(blade pass frequency)) is influenced of this law. In detail used to transmission and add to mass according to mass law, reduced particular noise. As a result high frequency is down until can't perception.

  • PDF

전자식 가솔린 엔진의 조절 방법에 관한 연구 (A study of electronic gasoline engine control technique)

  • 성낙원
    • 오토저널
    • /
    • 제9권5호
    • /
    • pp.66-76
    • /
    • 1987
  • The control technique for an electronic engine is studied. For this study an IBM-PC and a throttle body fuel injection system are selected. The computer controls fuel injection, spark timing, exhaust gas recirculation and idle speed. Fuel injection is adjusted either by a feed back signal of a zirconia $O_{2}$ sensor or programmed logic for starting, deceleration, warm ing up and idle modes. When a 3-way catalytic converter is used with the electronic engine control system, CO, THC, and NOx were reduced more than 90% simultaneously.

  • PDF

연료다단 연소기의 NOx 발생특성에 관한 실험적 연구 (An Experimental Study on the NOx Formation of Fuel Staged Combustor)

  • 정진도;안국영;한지웅
    • 한국자동차공학회논문집
    • /
    • 제11권6호
    • /
    • pp.73-79
    • /
    • 2003
  • The characteristics of NOx emission in multi fuel/air staged combustor have been experimentally studied. The design concept of multi fuel/air staged combustor is creation of two separate flame, a primary flame is act as a pilot flame for the secondary combustion stage combustion zone, where most of fuel burns. Experiments were performed on a semi-industrial scale (thermal input 0.233 ㎿) in a laboratory furnace and Liquefied Petroleum Gas(LPG) was used as primary and secondary fuels. The study included parametric study to identify the optimum operating conditions which are primary/secondary fuel ratio, primary/secondary air ratio, primary swirl intensity and secondary swirl intensity for reducing NOx emission. The test demonstrated that NOx emission can be reduced by >70% in accordance with operating conditions.