• 제목/요약/키워드: Common Rail Diesel Engine

검색결과 217건 처리시간 0.021초

부분부하에서 비에스테르화 바이오디젤 5% 혼합유의 성능최적화를 위한 실험계획법 적용에 관한 연구 (A study on the application of DOE for optimization of blending oil with non-esterified biodiesel fuel at partial engine load)

  • 김희중;고대권;양주호;고성위;김영식;정태영;정석호
    • 동력기계공학회지
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    • 제20권2호
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    • pp.51-57
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    • 2016
  • Non-esterified biodiesel fuel is cheaper than esterified that because of a simple manufacturing process that only consists of filtering. Applicability of this on diesel engine with electronic control system was accomplished, then optimization adopting a fractional factorial design and response surface methodology was carried out at 25% and 50% of engine load in this study. Pressure of common rail and injection timing mainly effected on responses as specific fuel oil consumption and nitrogen oxides regardless of engine load. Estimations were 310.3 g/kWh of specific fuel oil consumption and 237 ppm of nitrogen oxides at 25% load, and 233.2 g/kWh of specific fuel oil consumption and 730 ppm of nitrogen oxides at 50% load. Tests to verify these estimations were accomplished and as the results, specific fuel oil consumption was 300.4 g/kWh and NOx was 277 ppm at 25% load and 236.8 g/kWh and 573 ppm at 50% load.

대두유 바이오 디젤연료가 압축 착화 연소에서 배기가스에 미치는 영향 (Effects of Soybean Biodiesel Fuel on Exhaust Emissions in Compression Ignition Combustion)

  • 한만배
    • 대한기계학회논문집B
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    • 제34권10호
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    • pp.941-946
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    • 2010
  • 1.7L 커먼레일 직접분사 디젤엔진에 대하여 바이오 디젤 연료가 conventional 연소(PM-NOx 트레이드오프 존재)와 저온 연소(low temperature combustion, LTC)에서 배기가스 배출에 미치는 영향을 분석하였다. LTC 연소는 conventional 연소 대비 다량의 EGR 과 연료분사 조건 최적화를 통하여 이루어졌다. 실험에 사용한 두 가지 연료는 초저유황 디젤연료(ultra low sulfur diesel fuel, ULSD), ULSD 에 대두유를 20%(vol. base)혼합한 바이오 디젤 연료(B20)이다. 사용된 연료에 관계없이 LTC 연소를 통하여 conventional 연소 대비 PM 및 NOx 의 동시 저감이 가능하였다. 동일한 엔진작동 조건에 대하여 conventional 연소의 경우 B20 는 ULSD 보다 PM은 적게 배출되나, NOx 는 많이 배출되었다. LTC 연소의 경우 B20 는 ULSD 보다 PM 및 NOx 생성이 많았다.

피에조 액츄에이터 적용 고압 인젝터의 유압 동특성 해석 (Analysis of Hydraulic Characteristics of High Pressure Injector with Piezo Actuator)

  • 이진욱;민경덕
    • 한국자동차공학회논문집
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    • 제14권4호
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    • pp.164-173
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    • 2006
  • In the electro-hydraulic injector for the common rail Diesel fuel injection system, the injection nozzle is being opened and closed by movement of a injector's needle which is balanced by pressure at the nozzle seat and at the needle control chamber, at the opposite end of the needle. In this study, the piezo actuator was considered as a prime movers in high pressure Diesel injector. Namely a piezo-driven Diesel injector, as a new method driven by piezoelectric energy, has been applied with a purpose to develop the analysis model of the piezo actuator to predict the dynamics characteristics of the hydraulic component(injector) by using the AMESim code. Aimed at simulating the hydraulic behavior of the piezo-driven injector, the circuit model has been developed and verified by comparison with the experimental results. As this research results, we found that the input voltage exerted on piezo stack is the dominant factor which affects on the initial needle behavior of piezo-driven injector than the hydraulic force generated by the constant injection pressure. Also we know the piezo-driven injector has more degrees of freedom in controlling the injection rate with the high pressure than a solenoid-driven injector.

다성분 혼합연료를 이용한 디젤 분무 및 연소특성의 광계측 진단 (Laser Diagnostics of Spray and Combustion Characteristics Using Multi-Component Mixed Fuels in a D.I. Diesel Engine)

  • 윤준규;명광재;천전이랑;등본원;차경옥
    • 한국자동차공학회논문집
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    • 제14권5호
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    • pp.172-180
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    • 2006
  • This study was to analyze the effect of mixed fuel composition and mass fraction on the characteristics of evaporating diesel spray and combustion under the various ambient conditions. The characteristics of vaporization distribution and combustion were visualized by laser induced fluorescent method and direct photography. The experiments were conducted in the constant volume vessel and rapid compression expansion machine with optical access. Multi-component fuels mixed i-octane, n-dodecane and n-hexadecane were injected the vessel and rapid compression expansion machine with electronically controlled common rail injector. Experimental results show that fuel vapor formed stratified distribution. And vaporization and diffusion are become actively increasing in mass fraction of low boiling point component. Consequently multi-component fuels were expected to control the evaporating behavior according to their suitable mass fraction.

3리터급 DME 엔진용 LNT 후처리 장치 연구 (The Experimental Research of LNT for 3L-DME Engine)

  • 장진영;이영재;표영덕;조종표;우영민
    • 한국자동차공학회논문집
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    • 제21권6호
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    • pp.117-122
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    • 2013
  • This study is aimed to develop LNT(Lean NOx Trap) aftertreatment system for DME engine. Modified DME engine, which was changed from diesel to current DME engine, is used for this research and is equipped with common rail type injector and fuel supplying system. LNT system has reductant injector. DME is also used as reduction agent. For this research, reduction agent injection time width and interval were varied. And also, swirler was used to improve homogeneity of reducing agent in exhaust pipe. The reduction rate of NOx by LNT was increased by longer injection width, short interval and swirler. The maximum diminution of NOx by LNT was over 85%.

DME를 연료로 하는 압축 착화 엔진 용 플런저식 고압펌프의 유량 성능 연구 (A Study on the Flow Rate Performance of Plunger-Type High-Pressure Pump for Compression Ignition Engine Using DME as Fuel)

  • 정재희;이세준;유동규;임옥택
    • 한국가스학회지
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    • 제26권4호
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    • pp.1-8
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    • 2022
  • 디젤엔진의 대체 연료로 연구되고 있는 청정연료인 DME는 디젤엔진의 중요한 문제 중 하나인 배기가스를 줄일 수 있으며, 세탄가와 산소함유량이 매우 높다. DME는 LPG와 유사한 특성을 가진 연료로 LPG 유통 인프라를 사용할 수 있다. 본 연구에서는 플런저식 고압펌프의 성능평가를 위해 토출된 질량유량에 대한 기초 데이터베이스 구축을 목표로 하였으며, 커먼레일 압력과 모터 회전속도를 변화시켜 플런저식 고압펌프의 질량유량을 분석하였다. 실험 조건은 커먼레일 압력을 300 bar, 400 bar, 500 bar 로 변경하였고, 모터 회전 속도를 300 rpm에서 1000 rpm 으로 증가시켰다. 실험 결과 두 경우 모두 질량유량이 증가하였다.

바이오연료의 엔진 적용을 위한 분무거동 기초연구(팜유-점성고려) (Basic Study on Spray Behavior for Application of Biofuel to Diesel Engines (Palm Oil-Considering Viscosity))

  • 염정국;하형수
    • 대한기계학회논문집B
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    • 제36권7호
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    • pp.745-752
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    • 2012
  • 디젤엔진은 바이오연료 적용을 위한 엔진으로서 가솔린엔진과 비교해 사용연료가 바이오연료와 유사한 높은 세탄가를 가지며, 가솔린엔진과 달리 점화계통 장치의 불필요 등 기존 엔진의 개조비용 등에서 유리한 장점이 있다. 따라서 본 연구에서는 상용 디젤 엔진의 커먼레일 분사시스템을 사용하여 바이오연료인 식물성 팜유의 분무거동특성을 해석하고, 그 결과를 기존의 디젤엔진 연료인 경유와 비교 분석하였다. 실험변수로서는 분사압력과 경유에 대한 바이오디젤 연료의 혼합비율(BD3, BD5, BD20, BD30, BD50, BD100)을 달리하였다. 분사압력은 500bar, 1000bar, 1500bar 및 1600bar로 설정하고 분사기간은 $500{\mu}s$로 동일하게 하였다. 본 연구의 결과로서, 분사압력이 동일한 경우 사용한 바이오디젤 연료의 혼합비 변화에 대한 거시적 분무거동특성(분무선단도달거리 및 분무각)의 변화는 뚜렷하지 않았다. 특히 분무각의 경우 본 연구의 모든 실험조건에 있어서 약 $15^{\circ}$의 값을 나타내었다.

연료분사시기와 압력이 함정용 디젤연료의 분무 및 연소특성에 미치는 영향 (Effect of fuel injection timing and pressure on the combustion and spray behavior characteristics of diesel fuel for naval vessel)

  • 이형민
    • Journal of Advanced Marine Engineering and Technology
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    • 제39권9호
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    • pp.911-917
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    • 2015
  • 본 논문에서는 함정용 디젤연료를 단기통 커먼레일 디젤엔진에 적용하여 연료분사압력 변화에 따른 분사율 특성, 거시적 분무 특성 및 연료분사시기와 연료압력변화에 따른 연소 및 배기가스 배출특성을 분석하는데 초점을 두었다. 분사율 특성은 Bosch법을 적용한 분사율 측정 시험 장치를 이용하여 분석하였고, 거시적 분무 특성은 정적용기 및 초고속 카메라를 이용하여 분석하였다. 또한, 연료분사시기 및 연료압력 변화를 정밀하게 제어할 수 있는 단기통 엔진을 이용하여 연소 및 배기가스 배출특성을 분석하였다. 30MPa과 50MPa의 분사조건에서 초기 분사율은 50MPa의 분사조건에서 크게 나타났으며, 분무 발달(투과) 또한 동일시간대에서 큰 것으로 분석되었다. 연료분사시기가 지각될수록 실린더 내부 최대 압력과 최대 열발생량은 떨어지는 경향으로 나타났으며, 고압분사조건에서 실린더 내부 최대압력과 최대 열발생량은 다소 큰 것으로 분석되었다. 고압분사조건에서 도시평균유효압력은 낮은 것으로 분석되었고, 연료분사시기가 TDC 쪽으로 지각될수록 도시평균유효압력 및 토크는 증가하는 것으로 나타났다. 연료분사시기가 $BTDC20^{\circ}$(30MPa)와 $BTDC15^{\circ}$(50MPa)에서 질소산화물 발생수준이 가장 높았으며, 일산화탄소는 $BTDC30^{\circ}$를 기준으로 지각될수록 저감되었다.

직접분사식 압축점화 디젤엔진의 연소 및 배기특성에 관한 연구 (A Study on Combustion and Emission Characteristics in Compression Ignition CRDI Diesel Engine)

  • 김기복;최일동;하지훈;김치원;윤창식
    • 한국산업융합학회 논문집
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    • 제17권4호
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    • pp.234-244
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    • 2014
  • Recently it has been focused that the automobile engine has developed in a strong upward tendency for the use of the high viscosity and poorer quality fuels in achieving the high performance, fuel economy, and emission reduction. Therefore it is not easy to solve the problems between low specific fuel consumption and exhaust emission control at motor cars. In this study, it is designed and used the engine test bed which is installed with turbocharger and intercooler. In addition to equipped using CRDI by controlling injection timing with mapping modulator, it has been tested and analyzed the engine performance, combustion characteristics, and exhaust emission as operating parameters, and they were engine speeds(rpm), injection timing(bTDC), and engine load(%). From the result of an experimental analysis, peak cylinder pressure and the rate of pressure rise were increased, and the location of it was closer toward top dead center according to the increasing of engine speed and load, and with advancing injection timing. The combustion characteristics are effected by fuel injection timing due to be enhanced the mass burned fraction. Using the engine dynamometer for analyzing the engine performance, the engine torque and power have been enhanced according to advancing the fuel injection timing. In analyzing of exhaust emission, there has been a trade-off between PM and NOx with increasing of engine speed and load, and with advanced injection timing. The experimental data are shown that the formation of NOx has increased and PM, vice versa.

고압 연료 제어와 분사 특성 (A High Pressure Fuel Control and its Injection Characteristics)

  • 김상호;이용규;김재업;김응서
    • 한국자동차공학회논문집
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    • 제3권6호
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    • pp.123-133
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    • 1995
  • An injection control valve(ICV) was designed to control the fuel flow between a common rail and an injector with two commercial solenoids. To improve the performance of ICV, the characteristic method was applied. With this method, the flow characteristics in the ICV and the injector were studied and the parameters which affect the injection characteristics were also studied. From this study, following results were obtained. The injection duration can be controlled and with modifications of the effective valve stroke of ICV, the injection quantity and duration can be reduced to desired amount. Also the injection quantity and pressure can be controlled by reducing the hole size of the injector without the variation of the injection duration. For some conditions, the desired injection characteristics can be obtained by the changes of the valve timing, the effective valve stroke, the open pressure of the injector and the hole size of the injector.

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