• 제목/요약/키워드: 노킹

검색결과 51건 처리시간 0.022초

CNG엔진에서 합성가스 연료의 연소 및 배기 특성 평가 (Characteristics of Combustion and Emission for Synthetic Natural Gas in CNG Engine)

  • 이성원;임기훈;박철웅;최영;김창기
    • 한국가스학회지
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    • 제19권6호
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    • pp.8-14
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    • 2015
  • 합성가스(SNG)는 석탄 가스화를 통하여 얻어지는 가스연료로서, 고유가로 인한 천연가스가격 상승을 대비할 수 있는 대체연료 중의 하나로 주목받고 있다. 본 연구에서는 메탄 90.95%, 프로판 6.05%와 수소 3%의 조성비를 갖는 SNG연료 모사가스와 압축천연가스 (CNG)를 11리터 급 CNG 엔진에 적용하여 연소 및 배기 특성을 비교실험 하였다. 연료공급시스템, 분사시기 등 엔진의 연소제어인자를 일정하게 하고 전부하 운전조건에서 엔진회전수 변화에 따른 출력, 열효율, 연소 안정성 및 배기특성을 비교하였다. 1260rpm, 전부하 운전조건에서 노킹특성도 분석하였다. SNG 연료를 사용했을 때 출력 저하 없이 연소안정성이 향상되어 열효율이 증가하였다. 질소산화물($NO_x$)의 배출은 CNG연료의 경우에 비해 증가되었으나 이산화탄소($CO_2$)의 배출은 감소하였다. SNG 연료를 이용하여 운전할 경우 내노킹성이 향상되었다.

피스톤의 제2랜드 길이가 열응력에 미치는 영향 (An Effect of the 2nd Land Length of a Piston on Thermal Stress)

  • 권영웅;박성천
    • 동력기계공학회지
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    • 제12권2호
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    • pp.5-11
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    • 2008
  • An analytical study was performed to have temperature and thermal stress distribution on a piston with the change of the 2nd land length of a piston and the existence of knocking in a cylinder. The result showed that the temperature on the skirt region was about $4\sim10^{\circ}C$ higher than that on the pin region. However the thermal stress on the skirt region was about 4MPa lower than on the pin region. It may be due to the higher heat release rate on the pin boss than on the skirt. The result regarding the variation of the 2nd land length of the piston showed that the temperature distribution on the piston was getting lower and the thermal stress distribution was getting higher as the 2nd land length of the piston was shorter.

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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
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    • 제18권1호
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    • pp.7-12
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    • 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.

알코올을 보조적으로 사용한 직접분사식 디젤기관의 성능에 관한 고찰 (Some Considerations for Performance of D.I. Diesel Engine Using Auxiliary Fuel Such as Alcohol)

  • 이형곤;방중철
    • 한국자동차공학회논문집
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    • 제10권3호
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    • pp.28-35
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    • 2002
  • The objective of this paper is to quantitatively investigate the effects of alcohol mixture on the combustion improvement of main fuel in supplying alcohol to direct injection diesel engine by auxiliary injection method and blend method. If alcohol is supplied, engine performance greatly improves in high load range. In case of supplying ethanol, BSFC improves, the emission of smoke and NO decreases by delaying main fuel injection timing 5$\^{C}$A. The maximum delivery quantity of alcohol is limited to approximately 50% of total fuel delivery due to misfire and knocking. The limit quantity of main fuel injection that does not accompany misfire and the deterioration of BSFC was approximately 15∼18.5mg/st.

CARS 측정 기술을 이용한 스파크 점화 기관에서의 화염 전 화학 반응에 의한 온도 변화에 관한 연구 (A Study of the Temperature Elevation Due to the Pre-flame Reaction in a Spark-Ignition Engine Using CARS Technique)

  • 최인용;전광민;박철웅;한재원
    • 한국자동차공학회논문집
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    • 제9권5호
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    • pp.9-16
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    • 2001
  • End-gas temperatures were measured using CARS technique in a conventional DOHC spark- ignition engine fueled with PRF80. The measured pressure data were analyzed using band pass filter method. The measured CARS temperatures were compared with adiabatic core temperatures calculated from measured pressures. Significant heating by pre-flame reaction in the end gas zone was observed in the late part of compression stroke under both knocking and non-knocking conditions. CARS temperatures measured at 10 crank angle degree before knock occurrence was higher than adiabatic core temperatures. These results indicate that there exist some exothermic reactions in low pressure and temperature region. CARS temperatures began to be higher than the adiabatic core temperature when the end-gas temperatures reached look. The temperature elevation due to the pre-flame reaction correlated better with CARS temperature than with cylinder pressure.

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연료의 옥탄가 변화에 따른 스파크 점화기관의 노킹특성의 변화 (Effect of fuel octane number on knock characteristics in a spark-ignition engine)

  • 이홍철;전광민
    • 오토저널
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    • 제14권5호
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    • pp.61-68
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    • 1992
  • Knock phenomenon is an abnormal combustion originated from autoignition of unburned gas in the end-gas region during the later stage of combustion process and it accompanys a high pitched metallic noise. Engine Knock is accompanied with a vibration of engine cylinder and when it is severe, it can cause major engine demage. Engine Knock is characterized in terms of knock crank angle, knock pressure, pressure jump and knock intensity. In this study, a 4-cylinder spark ignition engine was used for experiment and eighty consecutive cycles were analyzed statistically. The purpose of this study is to characterize spark ignition engine knock as a function of ignition timing and fuel research octane number. The result of this study can be summerized as follows. Knock occurrence angle approached TDC as ignition timing is advanced. Pressure and knock intensity gradually increased as spark timing is advanced. Mean knock occurence angle gradually approached TDC as fuel research octane number is decreased for identical spark timing. Knock intensity increased linearly as RON is decreased.

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ECU 제어를 통한 가솔린 엔진의 노킹 특성에 관한 연구 (A Study on Characteristics of Knocking in Gasoline Engine through ECU Control)

  • 양현수;임주헌;천동준
    • 대한안전경영과학회지
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    • 제10권3호
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    • pp.109-115
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    • 2008
  • A burning principle in gasoline engine is the one of being burned, by which a mixer in air and gasoline enters a combustion chamber and causes a spark in the proper timing. This is formed, by which ECU controls the fuel-injection volume and the fuel-injection timing, and determines the performance of engine. The purpose of this study is to test the characteristics on knocking in gasoline engine with the knocking-sensor equipment and to research into the characteristics in knocking while directly controling the optimal igniting timing and the fuel-injection timing through engine ECU. Given controlling ECU by grasping the characteristics in knocking, which becomes the most problem in the engine tuning market, the tuning in a true sense will be formed in gasoline engine.

협각 인젝터를 이용한 예혼합 압축착화 연소에서의 디젤 노킹 가시화 (Diesel Knock Visualization of Premixed Charge Compression Ignition Combustion with a Narrow Injection Angle)

  • 박성산;정용진;배충식
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2012년도 제44회 KOSCO SYMPOSIUM 초록집
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    • pp.101-104
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    • 2012
  • In this work, in-cylinder pressure measurements and high-speed direct imaging of the flame were performed in an optically accessible single cylinder diesel engine with premixed charge compression ignition combustion and a narrow injection angle. The results show that the frequency ranges of pressure ringing were 8.35 to 9 kHz and 12..2 to 13.1 kHz. The frequencies of the flame movement were shown as 8.7 kHz and 13 kHz. It was found that there is a direct relationship between the pressure ringing and the flame movement.

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스파크점화 기관의 노킹측정에 관한 연구 (A study on spark-ignition engine knock measurements)

  • 전광민;장원준
    • 오토저널
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    • 제13권6호
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    • pp.57-64
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    • 1991
  • Spart-ignition engine knock is an abnormal combustion phenomenon originated from auto- ignition of a portion of or the entire end-gas during the later stage of combustion process. And engine knock is accompanied by a vibration of engine cylinder block and a high-pitched metallic noise. Engine knock is characterized in terms of its intensity, its occurrence crank angel and the percentage of engine knock cycles. To characterize engine knock, a precise measurements of cylinder pressure and a statistical analysis of cylinder pressure data are needed. The purpose of this study is to develope a technique to measure engine knock and its characteristics as a function of ignition timing change. A 4-cylinder spark-ignition engine and unleaded gasoline, whose octane number was 94, were used for experiments. To measure engine knock and to analyze engine knock characteristics, cylinder pressure data were sampled by a high speed data acquisition system which was developed in this study. Cylinder pressure data were sampled at each 0.1.deg. crank angle and the number of cycles continuously sampled was 80.

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전기점화기관에서 마이크로폰 센서를 이용한 노킹 측정 및 분석 (Measurement and Analysis of Knock Using a Microphone Sensor in a S.I. Engine)

  • 황승환;이종화;임진수
    • 한국자동차공학회논문집
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    • 제5권3호
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    • pp.202-208
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    • 1997
  • The knocking is one of major parameters to improve engine performance in a spark ignition engine. Many researches have been carried out to identify them using cylinder pressure, vibration signal and so on. In the present study, measurement and analysis was conducted to set up the criteria of knock occurrence by using microphone signal. Cylinder pressure was measured for the reference signal of knocking. It has been observed that resonance frequencies of pressure wave are nearly independent of engine operating conditions such as engine speed, air fuel ratio, load and octane number of fuel within to limited experimental conditions. SDBP(sum of different band-pass data) method using resonance frequency of knock was proposed for estimating knock intensity. SDBP method is superior to identify knock occurrence and its intensity in case of sound pressure measurement.

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