• Title/Summary/Keyword: DME-연료

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Development of DME Engine Using 3.9 Liter Diesel Engine with Mechanical Type Fuel System (3.9 리터 기계식 디젤 엔진을 이용한 DME 엔진 개발 연구)

  • JANG, JINYOUNG;WOO, YOUNGMIN;KIM, GANGCHUL;CHO, CHONGPYO;JUNG, YONGIN;KO, AHYUN;PYO, YOUNGDUG
    • Journal of Hydrogen and New Energy
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    • v.31 no.3
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    • pp.307-313
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    • 2020
  • The 3.9 liter diesel engine with a mechanical fuel injection system was converted to di-methyl ether (DME) engine and performance optimized. In order to switch to the DME engine, the plunger of the high pressure fuel pump was replaced and the diameter of the injector nozzle was increased. Through this, the disadvantage of DME having low calorific value per volume can be compensated. To optimize the performance, the number of injector nozzle holes, injector opening pressure, and fuel injection timing were changed. As a result, the optimum number of injector nozzle holes was 5, the injector opening pressure was from 15 MPa to 18 MPa, and the injection timing was 15 crank angle degree before top dead center (CAD BTDC). The power was at the same level as the base diesel engine and nitrogen oxides (NOx) emissions could be reduced.

Combustion and Emission Characteristics of Passenger Car Common-rail Diesel Engine with DME Fuel (DME를 이용한 승용 디젤 커먼레일 엔진의 연소 및 배기특성)

  • Lee, Dong-Gon;Youn, In-Mo;Roh, Hyun-Gu;Choi, Seuk-Cheun;Lee, Chang-Sik
    • Transactions of the Korean Society of Automotive Engineers
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    • v.18 no.6
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    • pp.91-97
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    • 2010
  • This paper described the effects of DME blended fuel on the engine combustion and emission characteristics of four cylinder CRDI diesel engine. Biodiesel was added into the DME fuel in order to improve the low kinematic viscosity of DME fuel. In this work, the experiment was performed under th various injection timings and injection strategy at constant engine speed and engine load. To maintain the fuel pressure and temperature, pressure and temperature controllers were installed to the DME fuel system. The results show that ignition delay was shortened and combustion duration was extended when DME blended fuel is supplied. Despite of slightly higher NOx emission with DME blended fuel at equal conditions in comparison with those of diesel fuel, the engine showed lower HC and CO emission characteristics.

A Study on the Characteristics of Spray and Engine Combustion of Diesel-DME Blended Fuel (Diesel-DME 혼합연료의 분무 및 엔진 연소특성에 관한 연구)

  • Yang, Ji Woong;Jung, Jae Hoon;Lim, Ock Taeck
    • Journal of ILASS-Korea
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    • v.18 no.2
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    • pp.73-80
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    • 2013
  • The purpose of this study was compared the spray, combustion and emissions (NOx, CO, HC, smoke) characteristics of a typical fuel (100% Diesel, DME) and Diesel-DME blended fuel in a Constant Volume Chamber (CVC) and a single-cylinder DI diesel engine. Spray characteristics were investigated under various ambient and fuel injection pressures when the Diesel-DME blended ratio is varied. The parameters of spray sturdy were spray shape, penetration length, and spray angle. Common types of injectors having seven holes and made by Bosch were used. As of use, the typical fuel (100% Diesel, DME) and the blended fuel by mixture ratio 95:5, 90:10 (Diesel:DME) were used. The Injection pressure was fixed by 70.1MPa, when the ambient Pressure was varied 0.1, 2.6 and 5.1 MPa. The combustion experiments was conducted with single cylinder engine equipped with common rail injection system. injection pressure is 70 MPa. The amount of injected fuels is adjusted to obtain the fixed input calorie value as 972.2 J/cycle in order to compare with the fuel conditions.

Atomization and Evaporation Characteristics of DME Fuel for the Application of HCCI Diesel Engine (HCCI 디젤엔진 연료적용을 위한 DME 연료 미립화 및 증발특성)

  • Chon, Mun-Soo;Hwang, Yong-Ha;Suh, Hyun-Kyu;Lee, Chang-Sik
    • Journal of ILASS-Korea
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    • v.11 no.3
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    • pp.140-146
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    • 2006
  • The objective of this work is to analyze the atomization and evaporation characteristics of dimethyl ether(DME) fuel for the application of HCCI diesel engine. In order to investigate the spray behavior of DME fuel, the macroscopic and microscopic characteristics were investigated in terms of spray development, spray tip penetration, impingement time, SMD, and axial mean velocity under the various injection timing and ambient conditions. For the illumination of spray, the spray visualization system was composed of a Nd:YAG laser and an ICCD camera and laser-sheet method was used. The atomization characteristics of DME fuel are analyzed by using phase Doppler particle analyzer (PDPA) system It was reveal that the spray development of DME is slower and rapidly disappeared as elapsed time after start of injection at the same injection duration. The impingement timing of diesel fuel was fester than that of DME fuel. The comparison of spray atomization characteristics in both fuels shows that diesel fuel has a large SMD value that DME.

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Experimental Study on Soot Formation in Opposed-Flow Ethylene Diffusion Flames by Mixing DME as an Alternative Fuel (대체 연료인 DME 혼합에 의한 대향류 에틸렌 확산화염내 매연 생성에 대한 실험적 연구)

  • Yoon, Doo-Ho;Yoon, Seok-Hun;Choi, Jae-Hyuk
    • Journal of the Korean Society of Marine Environment & Safety
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    • v.16 no.3
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    • pp.301-306
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    • 2010
  • DME(Di-Methyl Ehter, $CH_3OCH$) is currently attracting worldwide attention due to its environmentally friendly characteristics. Until now it was researched as a major alternative fuel of diesel automobile because it is a clean fuel producing low soot. Therefore, in this study, in order to investigate the effect of DME mixing on number density and size of soot particle, DME has been mixed in opposed-flow ethylene diffusion flame with the mixture ratios 5%, 14% and 30%. A laser extinction/scattering technique has been adopted to measure the volume fraction, number density, and size of soot particles. The experimental results showed that the soot concentration of mixture flames with the mixture ratios 5% and 14% produces soot more, even though that of 30% was decreased. This means that even though DME has been known to be a clean fuel for soot formation, the mixing of DME in diffusion flame of ethylene, where acetylene maintains high concentration in soot formation regions, could produce enhanced production of soot.

Development of additives for DME as a renewable energy (신재생에너지로서 DME 연료의 첨가제 개발)

  • Jang, Eunjung;Park, Cheonkyu;Yim, Eui-Soon;Jung, Choong-Sub;Lee, Bonghee
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.05a
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    • pp.178.1-178.1
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    • 2011
  • DME is generally expected to be used as a promising clean alternative fuel to diesel fuel. DME is not natural product but a synthetic product that is produced either through the dehydration of methanol or a direct synthetic from syngas. As DME has no carbon-carbon bond in its molecular structure and is an oxygenate fuel, it's combustion essentially generates no soot. DME has such cetane number of 55~60 that it can be used as a diesel engine fuel. However, DME has low lubricity but a proven method to solve the poor lubricity is by adding lubricity improver. Therefore, the aim of this study is to develop lubricity improver of DME as a transport fuel in Korea. In this study, we investigated a possibility of fatty acid ester compounds as a candidate to improve DME lubricity as compared with current lubricity improver of diesel. We also evaluated quality characteristics, storage stability of DME with lubricity additives.

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A Study of Membrane Reactor Process for DME synthesis (반응 및 분리공정이 결합된 DME제조 공정개발에 관한 연구)

  • 박상진;윤민영;서봉국;이규호
    • Proceedings of the Membrane Society of Korea Conference
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    • 2004.05b
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    • pp.163-167
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    • 2004
  • Dimethyl ether(DME)는 대기 오염 문제와 에너지 문제가 대두됨에 따라 저공해 경유 대체 연료로 각광받고 있는 물질이다. 최근 들어 메탄올로부터 고체산 촉매를 이용하여 DME를 합성하고자 하는 연구가 활발히 진행 중이다[1-4]. 메탄올로부터 DME의 합성시 촉매로는 제올라이트나 SiO$_2$/${\gamma}$-Al$_2$O$_3$를 사용하기도 하지만 ${\gamma}$-Al$_2$O$_3$나 변형된 ${\gamma}$-Al$_2$O$_3$가 일반적으로 사용된다.(중략)

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Spray and Combustion Characteristics of DME and Diesel Fuel in a Common-Rail Diesel Engine (커먼레일 디젤엔진의 DME와 디젤연료의 분무 및 연소 특성)

  • Kim, Myung-Yoon;Ha, Sung-Yong;Lee, Chang-Sik
    • Journal of ILASS-Korea
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    • v.12 no.1
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    • pp.30-37
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    • 2007
  • Dimethyl ether (DME) as an alternative fuel for compression ignition engine was investigated by measuring spray development processes, injection rate profiles, engine performance, and exhaust emission characteristics. The results of DME fueled engine were compared with those obtained by fueled with diesel. The experimental results showed that DME has approximately 0.03ms shorter injection delay and higher maximum injection rate than those of diesel fuel at a constant injection pressure of 50MPa. The spray visualization indicates that DME has shorter spray tip penetration due to its low density and faster evaporation. The combustion characteristics of DME operated engine provided faster ignition delay and three times shorter combustion duration. It is believed that the better evaporation and atomization characteristic of DME contributes the faster combustion. At all operating condition, soot emission was not detected due to the clean combustion of DME.

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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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Engine Performance and Exhaust Emissions Characteristics of DI Diesel Engine Operated with Neat Dimethyl Ether (순수 DME의 직접분사식 디젤기관의 성능 및 배기가스 특성)

  • Pyo, Young-Dug;Lee, Young-Jae;Kim, Gang-Chul;Kim, Mun-Heon
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.27 no.5
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    • pp.589-595
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    • 2003
  • DME(Dimethyl ether) is an oxygenated fuel with a octane number higher than that of diesel oil. It meets the ULEV emission regulation and reduces the smoke to almost zero when used in a diesel engine. In the present study, engine performance and exhaust emissions were investigated with a conventional DI diesel engine which has a jerk type injection pump. Test results showed that the power with DME were almost same as that of pure diesel oil, and the brake thermal efficiency increased a little. Also, smoke index from DME engine showed nearly zero level, but NO$_{x}$ was increased compare to diesel oil.