• 제목/요약/키워드: 가솔린 기관

검색결과 174건 처리시간 0.03초

수소연료전지차 정책 및 시사점 (Policy of Fuel Cell Electric Vehicle and It's Implication)

  • 전황수
    • 전자통신동향분석
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    • 제28권3호
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    • pp.151-159
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    • 2013
  • 수소연료전지차(fuel cell electric vehicle)는 가솔린 내연기관 대신 수소와 공기 중의 산소 결합으로 전기를 자체 생산하는 연료전지를 동력원으로 하는 자동차이다. 엔진이 없기 때문에 배기가스 및 오염물질을 배출하지 않아 세계적으로 점점 강화되고 있는 환경규제에 대응하기 위한 친환경 자동차로 부각되고 있다. 미국, 유럽, 일본 등 주요 선진국들은 수소연료전지차 보급을 앞당기기 위해 기술 개발을 지원하고 있고 수소연료전지차 실증 사업 및 프로젝트를 추진하고 있으며, 수소충전소 인프라 확충 및 관련 제도의 정비에 박차를 가하고 있다.

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VVT 사용에 의한 흡기관 분사식 수소기관의 성능 향상 및 $NO_x$ 감소 (Performance Enhancement and $NO_x$ Reduction in a Hydrogen-Fueled Engine with External Injection by Using VVT)

  • ;이광주;이종태
    • 한국수소및신에너지학회논문집
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    • 제19권6호
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    • pp.474-481
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    • 2008
  • 수소 기관에서 역화없이 고성능과 저$NO_x$를 실현시키기 위하여 밸브 타이밍 변화에 따른 흡기관 분사식 수소 기관의 성능을 파악하고 가솔린의 경우와 비교하였다. 그 결과 흡기밸브 타이밍은 역화억제와 성능향상에 큰 영향을 미치는 것을 확인하였다. 흡기밸브타이밍의 진각은 역화를 억제하며 효율과 출력을 동시에 향상된다. 비록 흡기밸브 타이밍 변화에 의해 NOx는 증가하지만, 희박영역인 출 ${\Phi}=0.5$에서 현저히 감소된다. 또한 열효율은 ${\Phi}=0.5$ 토크는 ${\Phi}=1.0$에서 가장 높게 나타난다. 흡기밸브 타이밍을 $ATDC20^{\circ}$에서 TDC로 변화시켰을 때, ${\Phi}=1.0$에서 토크는 약 28% 증가되고, ${\Phi}=0.5$에서 효율은 약 7%향상된다.

LPG/가솔린 Bi-Fuel 엔진성능에 관한 실험적 고찰 (An Experimental Study on Engine Performance of LPG/Gasoline Bi-Fuel)

  • 전봉준;박명호
    • 한국산학기술학회논문지
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    • 제10권7호
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    • pp.1433-1438
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    • 2009
  • 본 논문의 목적은 점화시기의 변화가 LPG/가솔린 겸용차량에 미치는 영향을 살펴보기 위한 것으로 가솔린 전용연료 모드를 LPG 전용연료 모드로 진각시킨 제어시스템을 제안하여 엔진회전수(1500rpm, 2000rpm) 및 점화시기 ($5^{\circ}$,$10^{\circ}$,$15^{\circ}$,$20^{\circ}$)의 변화에 따른 실린더내의 가스압력, 압력상승률 및 열발생률을 측정하였다. 그 결과 실런더내의 가스압력 및 압력상승률은 기관의 회전속도가 1500rpm 및 2000rpm 모두 점화시기가 진각될수록 증가하였으나, $20^{\circ}$부근에서의 압력상승률값만 약간 낮게 나타났다. 또한, 열발생률은 1500rpm에서 점화시기가 진각될수록 증가하였으며 2000rpm의 $20^{\circ}$부근에서 감소하는 경향을 볼 수 있었다.

BOOST를 이용한 가솔린 기관 흡·배기 계통의 시뮬레이션에 관한 연구 (Study on the Simulation of the Intake and Exhaust Systems of a Gasoline Engine Using BOOST)

  • 이대권;윤건식;류순필;우석근;성활경
    • 한국자동차공학회논문집
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    • 제21권4호
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    • pp.23-32
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    • 2013
  • This paper presents the simulation of the multi-cylinder 4-stroke cycle spark-ignition engine using a commercial simulation tool, AVL BOOST. Various models were examined to select the appropriate models that would best serve to analyze the main components of the intake and exhaust systems-the plenum chamber, the muffler and the exhaust manifold branch junction. For the plenum chamber and the muffler, the tank model and the pipe model were tested. In order to analyze the exhaust manifold branch junction, a complicated model which reflects the actual shape and involves pressure drops was compared to a simplified one. The results show that both the tank model and the pipe model are applicable with satisfying accuracies for the plenum chamber and the muffler. However, the tank model is more desirable in regards to convenience in modeling and efficiency in calculation. Though both the complicated model and the simplified model show satisfying accuracies for the exhaust manifold branch junction, the simplified model is recommended in regards to convenience in modeling and efficiency in calculation.

전부하 운전조건에서 메탄올 개질연료를 사용한 가솔린 엔진의 연소특성에 대한 수치해석 (A Numerical Analysis on Combustion Characteristics of the Gasoline Engine using Methanol Reformulated Fuels under WOT Condition)

  • 이석영;전충환
    • 에너지공학
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    • 제20권2호
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    • pp.163-169
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    • 2011
  • 기관의 구조를 변경하지 않는 상태에서 RM50의 사용 가능성에 대한 결정을 하기 위해 수치해석을 수행하였다. 열발생률을 비교한 결과 기관회전수가 증가할수록 각 연료간의 차이가 감소하였으며, RM50, 가솔린의 순서로 열발생률의 최대치가 높음을 알 수 있었다. 이는 연료의 연소속도의 순서와 동일하였다. 난류연소속도는 RM50이 가장 높으며 난류강도의 곡선은 난류 연소속도 곡선과 비슷한 경향을 보이고 있으며 RM50이 다른 연료에 비해 연소속도가 빠르고 소염거리가 짧으므로 연소실의 온도가 높아 NO 배출물을 증가시키는 요인이 되지만 NO의 화학적 반응 동력학의 영향에 의해 결과적으로 NO 배출물을 감소시킨다. 따라서 RM50 연료의 사용 가능성을 예측할 때는 연료의 저위발열량에 의한 실린더내 온도뿐 만 아니라 연소속도를 포함한 연소특성까지 고려할 필요가 있다.

연소실 직접분사식 성층급기 가솔린기관 개발에 관한 연구 - 연료분사압력과 부하변동에 따른 연소특성 해석 - (A Study on Stratified Charge GDI Engine Development - Combustion Analysis according to the Variations of Injection Pressure and Load -)

  • 이상만;정영식;채재우
    • 대한기계학회논문집B
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    • 제22권9호
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    • pp.1317-1324
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    • 1998
  • In general, DI gasoline engine has the advantages of higher power output, higher thermal efficiency, higher EGR tolerance and lower emissions due to the operation characteristics of increased volumetric efficiency, compression ratio and ultra-lean combustion scheme. In order to apply the concept of stratified charge into direct injection gasoline engine, some kinds of methodologies have been adapted in various papers. In this study, a reflector was adapted around the injector nozzle to apply the concept of stratified charge combustion which leads the air-fuel mixture to be rich near spark plug. Therefore, the mixture near the spark plug is locally rich to ignite while the lean mixture is wholly introduced into the combustion chamber. The characteristics of combustion is analyzed with the variations of fuel injection pressure and load in a stratified -charge direct injection single cylinder gasoline engine. The obtained results are summarized as follows ; 1. The MBT spark timing approached to TDC with the increase of load on account of the increase of evaporation energy, but has little relation with fuel injection pressure. 2. The stratification effects are apparent with the increase of injection pressure. It is considered by the development of secondary diffusive combustion and the increase of heat release of same region, but proceed rapidly than diesel engine. Especially, in the case of high pressure injection (l70bar) and high load (3.0kgf m), the diffusive combustion parts are developed excessively and results in the decrease of peak pressure than in the case of middle load. 3. The index of engine stability, COVimep value, is drastically decreased with the increase of load. 4. To get better performance of DI gasoline engine development, staged optimizaion must be needed such as injection pressure, reflector, intake swirl, injection timing, chamber shape, ignition system and so on. In this study, the I50bar injection pressure is appeared as the optimum.

가솔린기관의 회전수 변화에 따른 실린더 벽면온도 변화 및 기관성능에 관한 연구 (An Study on the Cylinder Wall Temperature and Performance of Gasoline Engine according to Engine Speed)

  • 권기린;오영옥;강남훈
    • 동력기계공학회지
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    • 제6권1호
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    • pp.20-26
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    • 2002
  • The purpose of this study is preventing the stick, scuffing, scratch between piston and cylinder in advance, and obtaining data for duration test in actual engine operation. The temperature gradient in cylinder bore according to coolant temperature were measured using $1.5{\ell}$ class diesel engine. 20 thermocouples were installed 2mm deep inside from cylinder wall near top ring of piston in cylinder block, at which points major thermal loads exist. It is suggested as proper measurement points for engine design by industrial engineers. Under full load and $70^{\circ}$, $80^{\circ}C$ and $90^{\circ}C$ coolant temperature conditions, the temperature in cylinder block and engine oil increased gradually according to the increase of coolant temperature, the siamese side temperature of top dead center is $142^{\circ}C$ in peripheral distribution, that is about $20^{\circ}C$ higher than that at thrust, anti-thrust, and rear side temperature, respectively. The maximum pressure of combustion gas in $70^{\circ}C$ coolant temperature is about 2 bar lower than those of $80^{\circ}C$ and $90^{\circ}C$ coolant temperature. The engine torque in $80^{\circ}C$, $90^{\circ}C$ coolant temperature condition is about 4.9Nm higher than that of $70^{\circ}C$ coolant temperature.

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중앙 분사방식의 직분식 가솔린 기관에서 연료 혼합기 형성에 미치는 분사시기와 캐비티 형상의 영향 (The Effect of Injection Timing and Cavity Geometry on Fuel Mixture Formation in a Central Injected DI Gasoline Engine)

  • 김태안;강정중;김덕줄
    • 한국자동차공학회논문집
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    • 제12권2호
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    • pp.32-38
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    • 2004
  • This study was performed to investigate the behavior of liquid and vapor phase of fuel mixtures with different piston cavity diameters in a optically accessible engine. The conventional engine was modified as Central Injected DI gasoline engine with swirl motion. Two dimensional spray fluorescence images of liquid and vapor phase were acquired to analyze spray behavior and fuel distribution inside of cylinder using exciplex fluorescence method. Piston cavity geometries were set by Type S, M and L. The results obtained are as follows. In the spray formation after SOI, the cone angle and width of the spray were decreased at late injection timing. With a fuel injection timing of BTDC $180^{\circ}C$, fuel was not greatly affected in a piston cavity but generally distributed as homogeneous mixture in the cylinder. With a fuel injection timings of BTDC $90{\circ}C$ and $60^{\circ}C$, fuel mixture was widely distributed in near the cavity center. As a injection timing was late in the compression stroke, residual width of fuel mixture was narrow in proportion to piston cavity.

MTBE 가솔린기관의 배기가스 특성에 관한 연구 (Emission Characteristics for the MTBE Gasoline Engine)

  • 노병준;이삼구;김규철
    • 한국추진공학회지
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    • 제5권2호
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    • pp.32-37
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    • 2001
  • 본 논문에서는 현재 시판되고 있는 주요 정유회사의 MTBE 가솔린을 이용하여 차량 배출 배기가스를 측정하였다. 배출 가스량은 차량 동력계상에 실제차량을 탑재하여 시험차량의 배기관에서 배출된 배출가스를 포집 하였으며, 우리나라의 공인배출가스 시험방법인 CVS-75 모드를 추적 주행하여 측정 하였다. CVS-75 모드는 cold start cycle, hot stabilized cycle 및 hot start cycle로 구성되며, 본 실험에서 분석한 배출가스는 일산화탄소, 질소산화물 및 탄화수소 등이다. 실험결과 배출 가스의 양에 있어서 근소한 차이만 보이고 있음을 알 수 있었다.

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대체연료로서 가솔린-메타놀 혼합연료에 의한 가솔린 기관성능과 배출오염물에 관한 연구 (A study on engine performances and exhaust emissions using gasoline-methanol as an alternative fuel)

  • 김희철;용기중
    • 오토저널
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    • 제3권2호
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    • pp.18-26
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    • 1981
  • The purpose of this paper is to study the possibility of practical use of gasoline-methanol mixed fuel as an alternative fuel of gasoline engines in the light of engine performances and harmful exhaust emissions as well as mixings and separations of the mixed fuels. When the methanol of 99.8% purity is mixed with super or regular gasoline available on the market today, the experimental results obtained without modifying carburetor in this study are as follows; 1.The separation ratio depends upon the gasoline-methanol mixing ratio only, regardless of fuel temperature and fuel additives for preventing separation of phase. 2.The critical absorption ratio is affected by the gasoline-methanol mixing ratio, its temperature and the quantity of fuel additives. 3.Concerning the distillation temperature, the initial point of all sorts of fuels is almost same,but 10% point and 35-60% point of mixed fuels are lower than those of gasoline only. 4.In case of throttle valve opening set, engine output using the mixed fuels is decreased compared to gasoline, but thermal efficiency is increased as a consequence of decreasing specific energy consumption. 5.In case of fixed load test, thermal efficiency is increased at low engine speed even under low part-load as well as under comparatively high part-load including full load. 6.CO and NOx emissions are reduced remarkably with the mixed fuels.

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