• 제목/요약/키워드: Two different fuel oils

검색결과 8건 처리시간 0.028초

Inedible Vegetable Oil as Substitute Fuel in Compression Ignition Engines-Jatropha Oil

  • No, Soo-Young
    • 한국분무공학회지
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    • 제14권4호
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    • pp.153-162
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    • 2009
  • The use of inedible vegetable oils as substitute for diesel fuel in compression ignition engine is of significance because of the great need for edible oil as food, and the reduction of biodiesel production cost etc. Jatropha curcas oil which is a leading candidate for the commercialization of inedible vegetable oils is selected in this study for reviewing the application in CI engine as an alternative fuel. The important properties of jatropha oil (JO) and JO biodiesel are summarized from the various sources in the literature. It is found that five different types of alternative fuel from JO such as neat JO, JO blends with diesel or other fuel, neat JO biodiesel, JO biodiesel blends with diesel or other fuel and degummed JO were extensively examined in the diesel engine. Two different application types of alternative fuels from JO such as preheating and dual fuelling were also tested, It should be pointed out that most of these applications are limited to single cylinder conditions. The systematic study for the selection of effective application method is required. It is clear that the blends of JOME and diesel can replace diesel fuel up to 10% by volume for running the existing common rail direct injection systems without any durability problems. The systematic assessment of spray characteristics of different types of JO and its derivatives for use as diesel engine fuel is also required.

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Possibility of Obtaining Lubricant Base Oil from Talakan Crude Oil Suitable for Exploitation in Extremely Cold Conditions in the Republic of Sakha (Yakutia)

  • Zhirkov, N.P.;Zakharova, S.S.;Sung, Zoo-One
    • Tribology and Lubricants
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    • 제31권1호
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    • pp.28-34
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    • 2015
  • This paper addresses the problems of using anti-freeze lubricants for different machines that must function at extremely low temperatures during winter operation in the Republic of Sakha (Yakutia). We discuss the possibility of obtaining anti-freeze base oils from Talakan crude oil, an area with major oil and gas deposits of the Republic of Sakha, and also provide the trade and technological classification of Talakan crude oil. We propose two different schemes for processing Talakan crude oil: the fuel scheme (obtaining light and heavy fractions as a fuel oil) and the base oil scheme (obtaining light fractions and base oils). We investigate the influence of pour point depressants on alkyl-methacrylate base on the low-temperature properties of the fractions obtained from Talakan crude oil and Korean base oils, and establish the optimal concentration of pour point depressants. We compare the properties of these fractions with the low-temperature properties of Korean base oils and find that the commercial oil "Ravenol 0W-40" provides optimistic results. We obtain oil with a pour point of minus $50^{\circ}C$ and a viscosity index greater than 100. The Design of Experiment was used to establish the optimum composition of the pour point depressants and the base oil S-8 to obtain lubricant oil with a kinematic viscosity of 17 cSt, viscosity index of 208, and a pour point of minus $64^{\circ}C$.

정량적 유동가시화 기술을 이용한 이종연료유 과도 혼합 농도분포 측정 (Measurements on Transient Mixing Concentrations of Two Fuel Oils using a Quantitative Flow Visualization Technique)

  • 염주호;도덕희;조경래;민성기;김명호;유경원
    • 한국수소및신에너지학회논문집
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    • 제23권4호
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    • pp.364-372
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    • 2012
  • Transient mixing states of two different fuel oils, dimethylformamide (DMF) oil and JetA1 oil, were investigated by using a color image processing and a neural network. A tank ($D{\times}H$, $310{\times}370mm$) was filled with JetA1 oil. The DMF oil was filled at a top tank, and was mixed with the JetA1 oil in the tank mixing tank via a sudden opening which was performed by nitrogen gas with 1.9 bar. An impeller was rotated with 700 rpm for mixing enhancements of the two fuel oils. To visualize the mixing state of the DMF oil with the JetA1 oil, the DMF oil was coated with Rhodamine B whose color was red. A LCD monitor was used for uniform illumination. The color changes of the DMF oil were captured by a camcoder and the images were transferred to a host computer for quantifying the information of color changes. The color images of two mixed oils were captured with the camcoder. The R, G, B color information of the captured images was used to quantify the concentration of the DMF oil. To quantify the concentration of the DMF oil in the JetA1 oil, a calibration of color-to-concentration was carried out before the main experiment was done. Transient mixing states of DMF oil with the JetA1 oil since after the sudden infiltration were quantified and characterized with the constructed visualization technique.

A Study on Diesel Engine NOx and Soot Emission Characteristics using Different Fuel Oils

  • Nam, Jeong-Gil;Kang, Dae-Sun
    • Journal of Advanced Marine Engineering and Technology
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    • 제32권7호
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    • pp.1080-1088
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    • 2008
  • This paper addresses some concerns faced by the shipping industry nowadays. Initially, the environmental issues were resolved and stricter regulations are now being implemented with regards to the exhaust gas, specifically nitrogen oxides (NOx) and sulfur oxides (SOx), emitted from ships. Secondly, with the increasing and unstable cost of fuel oils in the world market, it has become almost a necessity to explore on a new alternative fuel. Hence, this study was conducted. An experiment was carried-out on a fishing survey vessel with the main engine (M/E) and generator engine (G/E) operated on expensive marine gas oil (MGO). During the experiment, two pre-refinery systems were installed and different fuel oil samples were employed for the M/E and the G/E. Furthermore, the NOx emission and soot concentration were monitored and verified. The results confirmed the compatibility of some fuel oil types to the engines and meeting the emission standards. MDO, MF15 and Bunker A can be used in place of MGO for the engines(M/E, G/E).

가솔린, LPG, 디젤 차량에서 윤활유에 따른 배출가스 및 입자상물질 (Exhaust Gas Emission and Particulate Matter (PM) from Gasoline, LPG and Diesel Vehicle Using Different Engine Oil)

  • 장진영;이영재;권오석;우영민;조종표;김강출;표영덕;이민섭
    • 한국자동차공학회논문집
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    • 제24권2호
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    • pp.144-151
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    • 2016
  • This study effect of engine oils on regulated fuel economy and emissions including particulate matter (PM) to provide basic data for management of engine oil in vehicles. Three engine oils (Group III base oil, Group III genuine oil with additive package and synthetic oil with poly alpha olefins (PAOs)) were used in one gasoline, one LPG(liquefied petroleum gas) and two diesel vehicles. In the case of diesel vehicles, one is a diesel vehicle without DPF (diesel particulate filter) other is a diesel vehicle with DPF. In this study, the US EPA emission test cycle FTP-75, representing city driving, was used. HORIBA, PIERBURG, and AVL gas analyzers were used to measure the fuel economy and regulated emissions such as CO, NOx, and THC. The number of PM was measured using a PPS (pegasor particle sensor). And, the shape of PMs was analyzed by SEM (scanning electron microscope). The effects of oil type on fuel economy, exhaust gas, and PM were not significant because engine oil consumption by evaporation and combustion in the cylinder is very tiny. Fuel and vehicle type were dominant factors in fuel economy and emissions. HC emission from gasoline vehicles was higher than that from other vehicles and NOx emission from diesel vehicles was higher than that from other vehicles. The number of PM was not affected by the engine oil, but by the driving pattern and fuel. The shapes of the PM, sampled from each vehicle using any test engine oil, were similar.

인도네시아 열대작물 오일의 Amberlyst-15 촉매 에스테르화 반응 및 바이오디젤 물성 분석 (Esterification of Indonesia Tropical Crop Oil by Amberlyst-15 and Property Analysis of Biodiesel)

  • 이경호;;이준표;이진석;김덕근
    • 한국응용과학기술학회지
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    • 제36권1호
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    • pp.324-332
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    • 2019
  • 한국과 인도네시아를 포함한 대부분의 국가는 온실가스 감축을 위해 바이오디젤 같은 바이오연료 보급에 대한 강력한 정책을 추진하고 있다. 하지만, 바이오디젤 보급 확대를 위해서는 원료 부족 문제를 먼저 해결해야 한다. 본 연구에서는 원료 공급 안정성을 개선하고 바이오디젤 생산 가격을 낮추기 위해 비식용이면서 동시에 단위면적당 생산성이 높은 인도네시아 열대작물(R. Trisperma) 오일의 바이오디젤 생산 가능성을 조사하였다. 수확기간이 다른 두 종류의 오일은 많은 불순물과 높은 유리지방산 함량을 가지고 있어 효율적인 바이오디젤 생산을 위해, 에스테르화 반응과 전이에스테르화 반응을 실시하였다. 오일은 반응을 진행하기 앞서 여과와 수분제거 과정을 통해 반응의 효율을 높이고자 하였다. 에스테르화 반응은 불균질계 산 촉매인 Amberlyst-15를 사용하였으며, 반응 전 오일들의 산가는 각각 41, 17 mg KOH / g이었으나, 에스테르화 반응 후 3.7, 1.8 mg KOH/g으로 약 90% 이상의 전환율을 보이며 유리지방산 함량을 2%이하로 감소시켰다. 이후 전이에스테르화 반응은 KOH를 염기 촉매로 사용하여 바이오디젤 합성 실험을 진행하였다. 생성된 바이오디젤은 약 93%의 FAME 함량을 나타냈으며, 총 글리세롤의 함량은 0.43%으로 제품 규격(FAME 96.5%, 총 글리세롤 0.24%)에는 미달되었다. 이는 지방산 조성 분석 결과 일반적으로 관찰되지 않는 특이 지방산인 ${\alpha}$-Eleostearic acid가 10.7~33.4% 포함되어 나타나는 특성으로 판단되며, 추가 반응 최적화 및 분리정제 연구 진행으로 연료품질 규격 달성이 필요한 것으로 나타났다. 기존에 활용되지 못하던 비식용 원료로부터 바이오디젤 생산 기술을 확보할 경우 바이오디젤 보급 확대를 위한 안정적 원료 공급에 기여할 것으로 판단된다.

선박 및 육상 디젤 엔진용 연료유에서 발생하는 입자상물질에 대한 무차원 광소멸계수 계측에 관한 연구 (A Study on the Measurement of the Dimensionless Light Extinction Constant for Particulate Matter from Fuel Oil for Marine and Land Diesel Engines)

  • 노범석;최재혁;조권회;박설현;이원주
    • 해양환경안전학회지
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    • 제24권2호
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    • pp.275-281
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    • 2018
  • 선박용 연료유가 연소하는 과정에서 배출되는 오염물질은 대기오염을 유발하고 인체에 유해한 영향을 미치는 것으로 알려져 있다. 그에 따라, IMO에서는 선박에서 배출되는 오염물질을 규제하고 있다. 하지만 입자상물질(Particulate matter: PM)에 대한 규제는 아직 논의단계에 있으므로 선제적인 대응이 필요하다. 그러기 위해서는 입자상물질에 대한 기초적인 연구가 필수적이다. 이번 연구에서는 해상용 연료유에서 발생하는 입자상물질의 기초 데이터 구축을 위해 선박 디젤 엔진에 사용되는 연료유의 무차원 광소멸계수($K_e$)를 계측하여 분석하였다. 특성 비교를 위해 육상 디젤 엔진에 사용되는 연료유를 같은 방법으로 측정하였다. 두 연료유는 황함유량과 밀도에서 차이가 난다. 무차원 광소멸계수($K_e$)는 633 nm의 레이저를 이용하여 광학적인 방법으로 측정하고 중력식 필터법에 의해 채집된 입자상물질의 체적분율을 이용하여 결정하였다. 선박용 연료유에서 배출되는 입자상물질의 무차원 광소멸계수($K_e$)는 8.28이고, 육상용 연료유는 8.44이다. 두 연료유의 무차원 광소멸계수($K_e$)는 측정 불확도 범위내에서 거의 유사하였다. 하지만 Rayleigh limit 해법에서 구한 값과의 비교를 통해 광산란 비중이 클 수 있는 부분과 광투과율과 채집질량과의 관계를 통해 광소멸 특성이 상이할 수 있음을 확인하였다.

대형 디젤엔진 내구 시험에 의한 다른 종류 엔진오일의 물성 및 성능 특성에 관한 연구 (A Study on the Property and Performance Characteristics of Different Kind Engine Oil by Endurance Test of Heavy-duty Diesel Engine)

  • 이민호;김정환;송호영;김기호;하종한
    • 한국자동차공학회논문집
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    • 제22권7호
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    • pp.48-56
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    • 2014
  • Engine oil is an oil used for lubrication of various internal combustion engines. The main function is to reduce wear on moving parts; it also cleans, inhibits corrosion, improves sealing, and cools the engine by carrying heat away from moving parts. In engines, there are parts which move against each other. Otherwise, the friction wastes the useful power by converting the kinetic energy to heat. Those parts were worn away, which could lead to lower efficiency and degradation of the engine. It increases fuel consumption, decreases power output, and can induce the engine failure. This study was conducted to evaluate the relation between engine oil property changes and engine performance for the diesel engine. This test was performed by using 12L, 6 cylinder, heavy duty engines. Low SAPS 10W30 engine oil (two type engine oils) was used. Test procedure and method was in accordance with the modified CEC L-57-T97 (OM441LA) method. In this study, TAN, TBN, KV and metal components, engine power, blowby gas, A_F were presented to evaluate the relation with engine oil property changes and engine performance. TAN, TBN, KV and metal We found that the components were generally increased but engine performance did not change. This results mean that property changes did not affect on engine performance because those were not enough to affect engine performance.