• 제목/요약/키워드: Single-cylinder Diesel Engine

검색결과 132건 처리시간 0.033초

바이오 디젤 연료의 연소특성 (Combustion Characteristics of Biodiesel Fuel)

  • 윤승현;박성욱;권상일;이창식
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2004년도 제29회 KOSCI SYMPOSIUM 논문집
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    • pp.146-151
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    • 2004
  • The characteristics of combustion and emission of biodiesel fuel were investigated in a single cylinder DI diesel engine equipped with a common rail injection system. For investigating the effect of bio diesels, the experiments were conducted at various mixing ratio and engine operation conditions. Experimental results show that combustion pressure increased with the increase of mixing ratio and injection pressure. The HC and CO emissions are decreased and NOx emission is increased as the mixing ratio of biodiesels increases at 100MPa injection pressure. However the results of the emissions are shown the contrary to the results at 50MPa of injection pressure due to larger droplets of biodiesel sprays.

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단기통 디젤엔진에서 함정용 디젤유의 전·후 분사시기가 연소 및 배출가스 특성에 미치는 영향 (Effect of pre-post injection timing of diesel fuel for naval vessel on the combustion and emission characteristics in an optically-accessible single cylinder diesel engine)

  • 이형민
    • Journal of Advanced Marine Engineering and Technology
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    • 제38권7호
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    • pp.868-876
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    • 2014
  • 본 논문에서는 함정에 탑재된 추진용 엔진에 사용되는 디젤연료(MDO)의 분사상태를 가시화가 가능한 단기통 디젤엔진에 적용시켜 전 후 분사시기에 따른 연소특성, 일산화탄소(CO) 및 탄화수소(HC) 배출특성을 규명하고, 연소과정의 가시화를 통하여 연소특성을 분석하는데 초점을 두었다. 전 분사시기가 주 분사시기 쪽으로 지연될수록 실린더 내부 평균유효압력($P_{me}$) 및 최고압력($P_m$)은 상승했으나, 주 분사의 방열율은 저감되고, 일산화탄소 및 탄화수소의 발생량 또한 감소하였다. 후 분사시기가 빨라질 경우 주 분사에 의해 형성된 고온, 고압 하에서 연소가 이루어짐에 따라 실린더 내부 평균유효압력 및 최고압력은 증가하였고, 일산화탄소 및 탄화수소 배출수준 또한 증가하였다. 연소과정을 분석한 결과, 전 분사시기가 늦어질수록 주 분사 시 발생되는 착화지연은 매우 짧아지며, 화염강도는 매우 상승하였다. 분사시기에 관계없이 후 분사 시 착화지연 현상은 발생하지 않았으며, 후 분사시기가 늦어질수록 화염의 강도는 점점 떨어졌다.

DME를 사용한 단기통 엔진의 연소특성에 관한 수치해석적 연구 (A Numerical Study on Combustion Characteristics of Single Cylinder Engine Fueled with DME)

  • 김현철;강우;나병철;김명환
    • 한국자동차공학회논문집
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    • 제14권4호
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    • pp.39-48
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    • 2006
  • In this research, in order to study the spray, combustion, and emission characteristics of the common rail DME engine, the target engine was disassembled, and 3D CAD file was constructed using a 3D measurement machine and a rapid prototyping machine. Using the obtained 3D geometry, fine moving meshes are generated, and three dimensional non-steady turbulence flow field and combustion phenomenon including spray were numerically analyzed. As a result, IMEP of DME and diesel in medium and high speed revolution showed similar performance. As the DME fuel start to burn in spray area, the vaporized fuel rapidly spreads squish area in low speed revolution. In the case of DME engine, CO and NOx are relatively consistent with experiment results. It was found that the break-up, evaporation, collision model of DME fuel need to be properly adjusted through matching the characteristics of fuel and injector for further improvement.

RI-CNG 엔진에서 연료 분사시기에 따른 연소특성에 관한 연구 (Study on Combustion Characteristics with Fuel Injection Timing in a RI-CNG Engine)

  • 박종상;하동흔;염정국;하종률;정성식
    • 동력기계공학회지
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    • 제12권4호
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    • pp.5-11
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    • 2008
  • The RI gasoline engine haying a sub-chamber had a high cycle variation due to the difficulty of the residual gas scavenge in the sub-chamber. To solve this problem and improve the combustion performance of RI engine, we devised a method to inject directly CNG fuel into the sub-chamber. A DI diesel engine of single cylinder was converted into a RI-CNG engine and an electronic control unit for the engine was manufactured. In this study, the combustion characteristics of the RI-CNG engine were investigated with the injection timings and air excess ratios at the load conditions of 50% throttle open rate and 1700rpm. As the results from this study, the RI-CNG engine worked reliably under the condition of the ignitable lean limit of $\lambda=1.7$ by showing the $COV_{imep}$ below about 5%. And the highest thermal efficiency could be obtained in the injection timing that produced the high imep and the low $COV_{imep}$ at the same time. The CO emission concentration indicated very low values and the THC and $NO_x$ showed an opposite pattern. With a view to improving the thermal efficiency and reducing the harmful emissions, the proper control region of the ignition timing and the mixture ratio were nearly ATDC $20^{\circ}\sim50^{\circ}$ and $\lambda=1.4$ respectively.

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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.

분열모델 상수가 분무 및 연소특성에 미치는 영향 (Effects of Spray Breakup Model Variables on Spray and Combustion Characteristics)

  • 이승필;박준규;박성욱
    • 한국분무공학회지
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    • 제22권1호
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    • pp.29-35
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    • 2017
  • This paper describes the effects of spray breakup model constants on spray and combustion characteristics in single cylinder compression engine. KIVA-3V code coupled with a CHEMKIN chemistry solver was used for numerical analysis. In this study, spray simulations and combustion simulations are studied simultaneously. Spray simulation was conducted in constant volume to reduce the effects of air-flow as swirl or tumble. The model validation was conducted and there are little difference between experiments and simulation, this differences were reasonable. In spray simulation, the effects of model constants on spray tip penetration, spray patter and SMD were studied. Furthermore, the analysis of effects of breakup variables on combustion and emissions characteristics was conducted. The results show the KH-RT breakup model constants affects spray and combustion characteristics strongly. Increasing KH model variable (B1) and RT model constants ($C_{\tau}$, $C_{RT}$) induced slower breakup time.

대형 디젤 엔진에서 JP-8 과 디젤 적용 시의 배기 배출물 특성에 대한 이해 (Understanding Pollutant Emission in a Heavy-Duty Diesel Engine with JP-8 and Diesel)

  • 이진우;배충식
    • 대한기계학회논문집B
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    • 제35권12호
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    • pp.1375-1381
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    • 2011
  • 커먼레일 분사 시스템이 장착된 대형 단기통 가시화 엔진에서 디젤과 JP-8 의 연소 및 배기 특성을 분석하였다. 두 연료 적용 시, 배기 배출 경향을 분석하기 위해 직접 화염가시화와 이색법을 적용하였다. 연소 과정은 직접 화염 가시화로부터 화염 강도 분석을 통해 이루어 졌다. 이색법 결과는 화염 온도 및 KL 값을 도출하여 분석을 하였다. 직접 화염 가시화 결과, JP-8 연소 시, 점화 지연 기간이 길며, 디젤 연소에 비해 화염이 빠르게 소멸되는 것을 확인하였다. 화염 강도 분석을 통해 디젤 연소의 경우, 연소 전 기간에 걸쳐 높은 화염 강도 수준을 유지하며 화염 지속 기간이 긴 것을 알 수 있었다. 이색법 결과를 통해, JP-8 연소의 경우, 국부적으로 고온의 화염 면이 더 많이 분포하는 것을 확인하였으며, 이는 $NO_x$가 더 많이 배출된 경향을 설명해준다. 또한 KL 치 분석 결과, JP-8 연소 시 낮은 수준의 KL 값이 더 고르게 분포하는 것을 알 수 있었으며, 이는 JP-8 연소 시 스모크 가 덜 배출된 결과를 뒷받침 해준다.

바이오디젤을 적용한 압축착화 엔진에서 EGR율에 따른 연소 및 미세입자 배출물 특성 (Combustion and Nano-particulate Emissions Characteristics of a Compression Ignition Engine Fueled with Biodiesel according to EGR Ratio)

  • 차준표;윤승현;이창식
    • 한국자동차공학회논문집
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    • 제18권6호
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    • pp.98-104
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    • 2010
  • An experimental investigation was conducted to analyze the effects of EGR ratio on the combustion, exhaust emissions characteristics and size distributions of particulate matter in a single cylinder diesel engine with common-rail injection system fueled with biodiesel derived from soybean. In order to analyze the combustion, exhaust emissions and measurement of size distributions of particulate matter were carried out under various EGR ratio which was varied from 20~60% and the results were compared to those of results without EGR. The experimental results show that ignition delay was extended and maximum value of rate of heat release (ROHR) was decreased according to increasing of EGR ratio. In addition, oxidies of nitrogen ($NO_x$) emissions were reduced but soot emissions were increased under increasing of EGR ratio. However, under higher EGR ratio region, soot was slightly decreased. And then the particulate size distribution shows that high exhaust gas temperature restrain the formation of soluble organic fraction (SOF) which were beyond the accumulation mode (100~300nm) and lead to increase of nuclei mode particles.

압축착화 엔진에서 분사압이 저온연소에 미치는 영향 (Effect of Injection Pressure on Low Temperature Combustion in CI Engines)

  • 장재훈;이선엽;이용규;오승묵;이기형
    • 한국분무공학회지
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    • 제18권1호
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    • pp.21-26
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    • 2013
  • Diesel low temperature combustion (LTC) is the concept where fuel is burned at a low temperature oxidation regime so that $NO_x$ and particulate matters (PM) can simultaneously be reduced. There are two ways to realize low temperature combustion in compression ignition engines. One is to supply a large amount of EGR gas combined with advanced fuel injection timing. The other is to use a moderate level of EGR with fuel injection at near TDC which is generally called Modulated kinetics (MK) method. In this study, the effects of fuel injection pressure on performance and emissions of a single cylinder engine were evaluated using the latter approach. The engine test results show that MK operations were successfully achieved over a range of with 950 to 1050 bar in injection pressure with 16% $O_2$ concentration, and $NO_x$ and PM were significantly suppressed at the same time. In addition, with an increase in fuel injection pressure, the levels of smoke, THC and CO were decreased while $NO_x$ emissions were increased. Moreover, as fuel injection timing retarded to TDC, more THC and CO emissions were generated, but smoke and $NO_x$ were decreased.

선박용 디젤엔진에서 이단지연분사에 따른 배기 배출물 저감에 관한 실험 연구 (Experimental Study on Reduction of Emissions for Marine Diesel Engines with a Double Post Injection)

  • 이원주;최재혁;조권회
    • Journal of Advanced Marine Engineering and Technology
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    • 제39권4호
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    • pp.418-424
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    • 2015
  • 국제해사기구 해양환경보호위원회는 2016년 1월 1일부터 배출통제지역을 통항하는 선박에 대해서 Tier III를 적용하여 질소산화물 배출 규제를 더욱 강화하기로 결정하였다. 본 논문에서는 질소산화물 배출 저감을 위한 연구의 일환으로 한국해양대학교 실습선 한바다호를 이용하여 실제 운항 중에 주기관을 단일분사와 이단지연분사의 두 가지 조건으로 운전하여 부하별 배기가스, 실린더 압력, 연료소모량 등을 계측하였다. 그 결과 두 가지 운전조건 모두 엔진의 부하가 증가할수록 질소산화물과 이산화탄소 배출량도 함께 증가하는 경향을 보였으며, 일산화탄소의 농도는 감소하였다. 또한 이단지연분사 시에는 최대폭발압력이 약 10% 이상 감소하였고, 이로 인해 배기가스 내 질소산화물의 농도는 약 25~30% 정도 감소하였다. 하지만 질소산화물 배출 저감의 긍정적인 결과에 반하여 연료소비율이 약 3~5% 정도 증가하는 상반관계가 확인되었다.