• Title/Summary/Keyword: 세탄가

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A Study on Relationship between Fuel Characteristics and Combustion Characteristics of Reformed Diesel Fuels by Ultrasonic Energy Irradiation (II) - Relationship between Chemical Structure and Cetane Number - (초음파 개질 경유의 연료특성과 연소특성의 상관관계에 관한 연구 (II) -화학구조와 세탄가의 상관성-)

  • 이병오;류정인
    • Transactions of the Korean Society of Automotive Engineers
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    • v.11 no.1
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    • pp.64-71
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    • 2003
  • In order to analyze the effect of the chemical structure and the cetane number of reformed diesel fuels by ultrasonic energy irradiation, proton nuclear magnetic resonance spectrometer$(^1H-NMR)$ was used. From the study, following conclusive remarks can be made. 1) Branch Index(BI), aromatics percentages, and alpha methyl radical$(H_{\alpha})$ of the reformed diesel fuels by ultrasonic energy irradiation decreased more than the conventional ones. 2) All the cetane numbers which were calculated from carbon type structure and hydrogen type distribution of the reformed diesel fuels increased more than the conventional ones. 3) It is more reasonable to predict cetane number equation from carbon type structure than from hydrogen type distribution. 4) BI, aromatics percentages, and $H_{\alpha}$ on both for conventional fuel and reformed diesel fuels by ultrasonic energy irradiation are inversely proportional to cetane number fur these fuels.

Some factor and aids for improving the startability in diesel engine (디이젤기관의 냉시동성향상에 관여하는 몇개의 인자와 방책에 대하여)

  • 조진호
    • Journal of the korean Society of Automotive Engineers
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    • v.2 no.1
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    • pp.9-20
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    • 1980
  • 디이젤기관의 냉시동성이 가솔린기관에 비하여 떨어지는 것은 이미 우리가 알고 있는 사실이다. 근년에는 소형트럭, 승용차, 소형건설기계 등의 분야에 있어서도 고속디이젤기관을 널리 사용하게 되었고 앞으로 디이젤연료의 중질화 및 세탄가 저하의 영향 등을 고려할 경우 시동성의 확보는 더욱 중요한 문제로 된다. 시동성에 영향을 미치는 인자 혹은 시동성개선의 방책으로서는 분 무의 착화에 직접 관련되는 것 외에 축전지의 저온특성 혹은 기관의 마찰토오크 등 여러가지에 걸쳐 있으나 이들 중에서 특히 분무의 착화에 직접 관련되는 방책에 관해서는 그것이 시동성에 미치는 영향에만 그치는 것이 아니고 시동개시직후에 있어서 배출가스, 혹은 출력성능 등에 미 치는 영향에 대해서도 함께 고려를 하여야 할 경우가 있다. 본고에 있어서는 냉시동시의 분무의 착화에 대하여 직접 관련하거나 그것을 촉진시킨다고 생각되는 몇개의 인자와 구체적인 방책을 취급하므로써 그것들이 시동성 및 시동직후의 청백연 혹은 출력성능 등에 대하여 미치는 영향에 대해서 기술하며 아래에서 취급되는 시동시의 착화를 촉진하기 위한 실제적인 인자 및 방책은 어느 것이나 기본적으로는 하나의 개념에 집약된다. 즉 그것은 연표와 효소로부터 이루어지는 연소계에 있어서 착화조건을 갖추어야함을 말할 것도 없다.

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The Effect of T90 Temperature on Exhaust Emissions in Low-temperature Diesel Combustion (저온 디젤 연소에서 T90 온도가 배기가스에 미치는 영향)

  • Han, Man-Bae
    • Transactions of the Korean Society of Automotive Engineers
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    • v.19 no.4
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    • pp.72-77
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    • 2011
  • This study is to investigate the effect of the distillation temperature in ultra low sulfur diesel fuel on exhaust emissions in the low-temperature diesel combustion with 1.9L common rail direct injection diesel engine. Low temperature diesel combustion was achieved by adopting an external high EGR rate with a strategic injection control. The engine was operated at 1500 rpm 2.6 bar BMEP. The 90% distillation recovery temperature (T90) was $270^{\circ}C$ and $340^{\circ}C$ for the respective cetane number (CN) 30 and 55. It was found that there exists no distinctive discrepancy on exhaust emissions with regards to the different T90s. The high CN (CN55) fuels follow the similar trend of exhaust emissions as observed in CN30 fuels' except that high T90 fuel (CN55-T340) produced higher PM compared to low T90 fuel (CN55-T270). This may come from that high T90 plays an active role in aggravating the degree of fuel-air mixture preparedness before ignition.

A Study on Correlation of Fuel Characteristics and Combustion Characteristics of Reformed Diesel Fuels by Ultrasonic Irradiation (II);Correlation of Chemical Structure and Cetane Number (초음파 개질 경유의 연료특성과 연소특성의 상관성에 관한 연구 (II);화학구조와 세탄가의 상관관계)

  • Lee, Byoung-Oh;Kim, Yong-Kuk;Kwon, Oh-Sung;Choi, Doo-Seuk;Ryu, Jeong-In
    • 한국연소학회:학술대회논문집
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    • 2002.06a
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    • pp.163-170
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    • 2002
  • The main objective of this study is to investigate the correlation of chemical structure and cetane number of reformed diesel fuels by ultrasonic irradiation. In order to analyze the effect of the chemical structure and the cetane number of reformed diesel fuels by ultrasonic irradiation, $^1H-NMR$ was used. From the study, following conclusive remarks can be made. 1) BI(=Branch Index), aromatics percentages, and $H_{\alpha}(={\alpha}-methyl$ functional group) of the reformed diesel fuels by ultrasonic irradiation decreased more than those of the conventional diesel fuel. 2) All the cetane numbers which were calculated from carbon type structure and hydrogen type distribution of the reformed diesel fuels increased more than those of the conventional diesel fuel. 3) Using predicated equation of cetane number caculated from carbon type structure is more reasonable than that caculated from hydrogen type distribution 4) BI, aromatics percentages, and $H_{\alpha}$ on both of conventional fuel and reformed diesel fuels by ultrasonic irradiation are inversely proportional to cetane number on these fuels.

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The Effect of an Aromatic Content on Exhaust Emissions in Low Temperature Diesel Combustion (저온 디젤 연소에서 연료의 방향족 성분이 배기가스에 미치는 영향)

  • Han, Man-Bae
    • Transactions of the Korean Society of Automotive Engineers
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    • v.19 no.3
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    • pp.106-112
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    • 2011
  • This study is to investigate the effect of an aromatic content in high cetane number (CN) fuels on exhaust emissions under low temperature diesel combustion, which expands the previous research about an aromatic content in low CN fuels. A 1.9L common rail direct injection diesel engine was run at 1500 rpm 2.6 bar BMEP with four fuel sets: an aromatic content of 20% (A20) or 45% (A45) with CN30, i.e. low CN fuels, and CN55, i.e. high CN fuels. Given experimental conditions, the trend of exhaust emissions in high CN fuels was inconsistent with that of low CN fuels which all produced nearly zero smoke but higher NOx for the high aromatic fuel (CN30-A45). For high CN fuels, however, the low aromatic fuel (CN55-A20) produced lower smoke than the high one (CN55-A45) while NOx was similar to each other. The cause of this discrepancy between high CN and low CN fuels is unclear whether it comes from that CN may be a dominant factor to govern exhaust emissions rather than an aromatic content or that the actual CN value of CN55-A45 is lower than CN55-A20. More decent fuel matrix should be prepared and further experiments are needed to confirm it.

The Effects of DME on Formation of Methane Hydrate (DME가 메탄하이드레이트 생성에 미치는 영향)

  • Lim, Gyegyu
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.06a
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    • pp.217.2-217.2
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    • 2010
  • 자연 상태에서의 가스하이드레이트의 존재는 물의 빙점보다 높은 온도에서 가스 수송관이 막히는 사고가 관내에 생성된 하이드레이트에 의한 것으로 규명된 이후영구동토지역이나 심해저에 부존되어 있는 막대한 매장량으로 인해 매우 활발한 연구가 최근에 진행되고 있다. 가스하이드레이트는 수분의 량에 비해 대량의 가스를 함유하므로 인위적인 가스하이드레이트를 제조하기 위하여 여러 가지 연구 중 하이드레이트 반응을 촉진하는 촉진제(promoter)와 생성을 억제하는 억제제(inhibitor)를 찾는 연구가 활발히 이루어지고 있다. 계면활성제와 고분자물질이 이들의 다양한 첨가제로 현제 사용되고 있다. 이러한 연구에서 메탄가스하이드레이트 형성에 영향을 미치는 대상물질로 선택한 DME(Dimethane Ether)는 산소 함유율이 34.8wt%인 함산소연료로 최근 신에너지로 부상하고 있으며, 해외 가스전 개발과 맞물려서 상용화단계에 들어와 있다. DME의 물리화학적인 특성으로는 상온의 온도에서 약5기압의 압력으로 액화 시킬 수 있다. 마취성이 강한 디에틸에테르와는 달리 마취성이 없을 뿐만 아니라 인체에 무해한 무색기체로 세탄가가 60가까이되어 경유(세탄가 55) 대체연료로 내연기관의 실증사업이 진행되고 있다. 이러한 특성을 갖고 있는 DME가 메탄가스 하이드레이트 생성에는 어떤 영향을 미치는지를 본 연구에서는 실험을 통해서 분석을 수행하였다. 실험과정에는 세 단계로 구분하여 진행하였는데 첫 번째 단계에서는 메탄가스만으로 하이드레이트 생성조건을 실험분석하였고, 두 번째 단계에서는 DME가스를 먼저 주입한후 동일 온도에서 메탄가스를 주입시켜 하이드레이트 생성 압력을 실험측정하였다. 마지막 단계에서는 DME가스를 약 두 배 정도 많이 주입한 후 동일 온도에서 메탄가스를 주입하여 하이드레이트 생성 압력을 측정하였디. 이러한 단계별 과정을 다소 온화한 $-5^{\circ}C{\sim}4^{\circ}C$의 온도 범위에서 반복적으로 수행하였다. 실험결과에서는 메탄만의 하이드레이트 형성보다 빙점($0^{\circ}C$) 이하의 온도 범위에서는 DME가 메탄하이드레이트 형성에 촉진제 역할을 하였고, 빙점 이상의 온도에서는 억제제의 역할을 하는 것으로 측정되었다. 또한 첨가된 DME의 양에 따라 촉진제의 역할과 억제제의 역할에 확연한 차이를 보였다. 추후 실험에서는 좀더 넓은 농도, 온도 및 압력범위에서 재현성 실험을 추가로 수행할 것도 제안한다.

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A Study on the Prediction of the Cetane Number of Diesel Fuels from the Carbon Types Structural Compositions by 13C-Nuclear Magnetic Resonance Spectroscopy (13C-NMR에 의해 결정된 탄소 유형별 구조적 조성으로부터 디이젤 연료의 세탄가의 예측에 관한 연구)

  • Choi, Ju-Hwan;Chun, Yong-Jin;Choi, Ung-Su;Choi, Young-Sang;Kwon, Oh-Kwan
    • Applied Chemistry for Engineering
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    • v.4 no.4
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    • pp.709-714
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    • 1993
  • The cetane number is a measure of ignition quality, specifically ignition delay, of diesel fuel. It is an engine measure of kinetic phenomena. The ignition quality such as kinetic behavior does correlate with the molecular structure, the carbon type structural composition. In fact, we use the group additivity rule to dissect the molecular structures and predict cetane number. In this study, the use of $^{13}C-Nuclear$ Magnetic Resonance spectroscopic measuring the molecular structure and group additivity rule at different diesel fuels, whose cetane numbers were determined on a number of standard cetane rating engines is proposed to predict cetane numbers that relate the carbon type structural composition. The effect of the molecular structures on the cetane numbers has been studied.

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Performance and Emission Characteristics of a Compression Ignition Engine Operated with LPG and Cetane Enhancing Additives (LPG/DTBP 혼합연료를 사용하는 압축착화 엔진의 부분부하 성능 및 배기특성에 관한 연구)

  • Lee, Seok-Hwan;Oh, Seung-Mook;Choi, Young;Kang, Kern-Yong
    • Transactions of the Korean Society of Automotive Engineers
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    • v.18 no.6
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    • pp.105-113
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    • 2010
  • In this study, a feasibility test of liquid petroleum gas (LPG) compression ignition (CI) engine has been carried out to study the effectiveness of cetane enhancing additive: Di-tertiary-butyl peroxide (DTBP). Performance and emissions characteristics of a CI engine fuelled with DTBP blended LPG fuel were examined. Also, the effect of EGR (exhaust gas recirculation) on the combustion and emissions characteristics has been investigated. Results showed that stable engine operation over a wide range of the engine loads was possible. Exhaust emissions measurements showed that hydrocarbon were decreased with the blended fuel at enhancing cetane number. Furthermore, the combustion stability of LPG with a cetane number improver was equivalent to that of commercial Diesel fuel. Increasing the EGR rate leads to deteriorate the IMEP (indicated mean effective pressure) and increase the ignition delay. It was found that the exhaust emissions with the EGR resulted in a very large reduction in nitrogen oxides at the expense of higher THC and CO emissions. Considering the results of engine performance and exhaust emissions, LPG blended fuel of enhancing cetane number could be used as an alternative fuel for diesel in a CI engine.

Characteristic Analysis of GTL Fuel as an Automobile Diesel (자동차용 경유로서 GTL의 연료특성분석)

  • Lim, Young-Kwan;Shin, Seong-Cheol;Kim, Jong-Ryeol;Yim, Eui-Soon;Song, Hung-Og;Kim, Dongkil
    • Applied Chemistry for Engineering
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    • v.19 no.6
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    • pp.617-623
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    • 2008
  • GTL (gas-to-liquid) fuel produced by the Fischer-Tropsch reaction of carbon monoxide (CO) and hydrogen ($H_2$) is expected to be one of the environmental friendly biomass based alternatives and blended to petrodiesel. In this study, the characteristic of the fuel was analyzed by its concentration differences after blending petrodiesel in domestic market with different amounts of GTL fuel which produced from Shell. Gas chromatography shows that GTL fuel consists of longer paraffin chain than common diesel. GTL fuel showed a high flash point, distillation, kinematic viscosity, and derived cetane number. In addition, GTL fuel showed lower lubricity due to low sulfur content.

The Effect of Cetane Number on Exhaust Emissions in Low-temperature Diesel Combustion (저온 디젤 연소에서 세탄가가 배기가스 특성에 미치는 영향)

  • Han, Man-Bae
    • Transactions of the Korean Society of Automotive Engineers
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    • v.19 no.6
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    • pp.17-22
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    • 2011
  • This study is to investigate the effect of the cetane number in ultra low sulfur diesel fuel on combustion characteristics and exhaust emissions at 1500 rpm and 2.6bar BMEP in low-temperature diesel combustion with 1.9L common rail direct injection diesel engine. Low-temperature diesel combustion was achieved by adopting external high EGR rate with the strategic injection control without modification of engine components. Test fuels are ultra low sulfur diesel fuel (sulfur less than 12 ppm) with two cetane numbers (CN), i.e., CN30 and CN55. For the CN30 fuel, as a start of injection (SOI) timing is retarded, the duration of an ignition delay was decreased while still longer than $20^{\circ}CA$ for all the SOI timings. In the meanwhile, the CN55 fuel showed that an ignition delay was monotonically extended as an SOI timing is retarded but much shorter than that of the CN30 fuel. The duration of combustion for both fuels was increased as an SOI timing is retarded. For the SOI timing for the minimum BSFC, the CN30 produced nearly zero PM much less than the CN55, while keeping the level of NOx and the fuel consumption similar to the CN55 fuel. However, the CN30 produced more THC and CO than the CN55 fuel, which may come from the longer ignition delay of CN30 to make fuel and air over-mixed.