• 제목/요약/키워드: DME-LPG

검색결과 40건 처리시간 0.022초

LPG 예혼합 압축 착화 엔진의 배기가스 및 연소 특성 (Emissions and Combustion Characteristics of LPG HCCI Engine)

  • 염기태;장진영;배충식
    • 한국자동차공학회논문집
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    • 제14권4호
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    • pp.149-156
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    • 2006
  • This paper investigates the steady state combustion characteristics of LPG homogeneous charge compression ignition(HCCI) engine with variable valve timing(VVT) and dimethyl ether(DME) direct injection, to find out the benefits in exhaust gas emissions. VVT is one of the attractive ways to control HCCI engine. Hot internal residual gas which is controlled by VVT device, makes fuel is evaporated easily, and ignition timing is advanced. Regular gasoline and liquefied petroleum gas(LPG) were used as main fuel and dimethyl ether(DME) was used as ignition promoter in this research. Operating range and exhaust emissions were compared LPG HCCI engine with gasoline HCCI engine. Operating range of LPG HCCI engine was wider than that of gasoline HCCI engine. The start of combustion was affected by the intake valve open(IVO) timing and the ${\lambda}TOTAL$ due to the latent heat of vaporization, not like gasoline HCCI engine. At rich operation conditions, the burn duration of the LPG HCCI engine was longer than that of the gasoline HCCI engine. CAD at 20% and 90% of the mass fraction burned were also more retarded than that of the gasoline HCCI engine. And carbon dioxide(CO2) emission of LPG HCCI engine was lower than that of gasoline HCCI engine. However, carbon oxide(CO) and hydro carbon(HC) emission of LPG HCCI engine were higher than that of gasoline HCCI engine.

DME가 메탄하이드레이트 상평형에 미치는 영향 (The Effect of DME on Phase Equilibria of Methane Hydrates)

  • 임계규;이광희
    • 한국수소및신에너지학회논문집
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    • 제23권6호
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    • pp.660-669
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    • 2012
  • Gas resources captured in the form of gas hydrates are an order of magnitude larger than the resources available from conventional resources. Focus of this research is to investigate the effect of DME on phase equilibria of methane hydrate, as well as the possibility of the use of the PRO/II computer simulation to estimate the phase equilibria. In systems containing water and a gaseous component like, for instance, methane, ethane, and propane, gas hydrates may occur, if conditions in terms of pressure and temperature are satisfied. Mixtures of gases, e.g. LPG or natural gas, are also able to form gas hydrates in the presence of water. The experiments presented here were performed at temperatures varying between 268.15K and 288.15K and at pressures varying between 1.88 MPa and 10.56 MPa. It was found that the phase equilibria of methane hydrate is influenced by the addition of DME to the system. The pressure for the equilibrium hydrate-liquid water-vapor (H - $L_w$ - V) in the system water + methane is reduced upon addition of DME. The phase equilibria of methane hydrate can be estimated by the PRO/II computer simulation, whereas those of methane hydrate containing DME or LPG can't be estimated properly.

LPG-DME 압축착화 엔진에서 흡기 가변밸브 영향 (LPG-DME Compression Ignition Engine with Intake Variable Valve Timing)

  • 염기태;배충식
    • 한국자동차공학회논문집
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    • 제16권2호
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    • pp.158-165
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    • 2008
  • The combustion and exhaust emissions characteristics of a liquefied petroleum gas-di-methyl ether compression ignition engine with a variable valve timing device were investigated under various liquefied petroleum gas injection timing conditions. Liquefied petroleum gas was used as the main fuel and was injected directly into the combustion chamber. Di-methyl ether was used as an ignition promoter and was injected into the intake port. Different liquefied petroleum gas injection timings were tested to verify the effects of the mixture homogeneity on the combustion and exhaust emission characteristics of the liquefied petroleum gas-di-methyl ether compression ignition engine. The average charge temperature was calculated to analyze the emission formation. The ringing intensity was used for analysis of knock characteristics. The combustion and exhaust emission characteristics differed significantly depending on the liquefied petroleum gas injection and intake valve open timings. The CO emission increased as the intake valve open and liquefied petroleum gas injection timings were retarded. However, the particulate matter emission decreased and the nitrogen oxide emission increased as the intake valve open timing was retarded in the diffusion combustion regime. Finally, the combustion efficiency decreased as the intake valve open and liquefied petroleum gas injection timings were retarded.

KOGAS DME 공정의 실증 시험을 통한 최적화 기술개발 (Optimization of KOGAS DME Process From Demonstration Long-Term Test)

  • 정종태;조원준;백영순;이창하
    • 한국수소및신에너지학회논문집
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    • 제23권5호
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    • pp.559-571
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    • 2012
  • Dimethyl ether (DME) is a new clean fuel as an environmentally-benign energy resource. DME can be manufactured from various energy sources including natural gas, coal, and biomass. In addition to its environmentally friendly properties, DME has similar characteristics to those of LPG. The aim of this article is to represent the development of new DME process with KOGAS's own technologies. KOGAS has investigated and developed new innovative DME synthesis process from synthesis gas in gaseous phase fixed bed reactor. DME has been traditionally produced by the dehydration of methanol which is produced from syngas, a product of natural gas reforming. This traditional process is thus called the two-step method of preparing DME. However, DME can also be manufactured directly from syngas (single-step). The single-step method needs only one reactor for the synthesis of DME, instead of two for the two-step process. It can also alleviate the thermodynamic limitations associated with the synthesis of methanol, by converting the produced methanol into DME, thereby potentially enhancing the overall conversion of syngas into DME. KOGAS had launched the 10 ton/day DME demonstration plant project in 2004 at Incheon KOGAS LNG terminal. In the mid of 2008, KOGAS had finished the construction of this plant and has successively finished the demonstration plant operation. And since 2008, we have established the basic design of commercial plant which can produce 3,000 ton/day DME.

신에너지 충전소의 정량적 위험성 평가를 위한 폭발 시뮬레이션 (Explosion Simulations for the Quantitative Risk Analysis of New Energy Filling Stations)

  • 단승규;박경준;김태옥;신동일
    • 한국가스학회지
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    • 제15권1호
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    • pp.60-67
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    • 2011
  • 화석연료의 고갈과 대기오염 문제의 부담을 덜어줄 수 있는 신에너지 및 재생에너지에 대한 관심이 증가하면서 현재 사용 중인 LPG 및 LNG 가스의 대체 (혼합)연료로, DME (dimethyl ether)와 수소를 혼합 (HCNG)하여 사용하는 방안이 추진되고 있다. 이와 같은 에너지원은 인화성 가스 폭발의 위험을 가지고 있기 때문에, 본 연구에서는 기존의 시설에서 이 혼합연료를 사용할 경우에 대비한 안전관리의 일환으로, 3가지 폭발피해 예측방법 (TNT 당량모델, PHAST 및 CFD기반의 FLACS)을 이용하여 정량적 위험성 평가를 실시하였다. 그리고 각 폭발모델에 의해 산출된 사고결과인 과압의 차이를 비교하였고, 폭발모델의 사용방안을 제시하였다. 그 결과, 기존의 2가지 충전소에서 신에너지 혼합연료를 사용할 경우에는 폭발에 의한 추가 피해는 없을 것으로 예상되었다.

DME 상용화 플랜트 예비 타당성 조사 (Preliminary Feasibility Study for Commercial DME Plant Project)

  • 모용기;강민서;송택용;백영순;조원준
    • 한국수소및신에너지학회논문집
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    • 제25권2호
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    • pp.173-182
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    • 2014
  • Dimethyl ether (DME) is a new clean fuel as an environmentally-being energy resources. DME has similar characteristics to those of LPG and can be substituted Diesel fuel. KOGAS has investigated and developed new innovative DME synthesis process from synthesis gas with KOGAS's own technologies. KOGAS had finished the construction of 10ton/day DME demonstration plant in 2008, we have established the basic design of commercial plant which can produce 3,000ton/day DME. Specifically, an economic model for a commercial DME project will be presented. It accounts for all the major cost factors that are considered in a commercial scale project as the model input for performing cash flow analysis, after which key economic indicators are produced including the internal rate of return (IRR), net present value (NPV). Sensitivity analysis is performed to identify dominant cost factors to the project economics and quantify their impact. The inputs to the economic analysis will be based on representative cost factors from the commercial-scale design of KOGAS' direct DME process supplemented by literature data. Case study results will be presented based on recent commercialization projects.

DME와 메탄의 GE7EA 모사가스터빈 연소성능시험 (GE7EA Gas Turbine Combustion Performance Test of DME and Methane)

  • 이민철;서석빈;정재화;주용진;안달홍
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.3270-3275
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    • 2007
  • DME (Dimethyl Ether, $CH_3OCH_3$) has highly attracted attention as an alternative fuel for transportation, power generation and LPG substitute owing to its easy transportation and cleanliness. This study was conducted to verify the combustion performance and to identify potential problems when DME is fuelled to a gas turbine. GE7EA gas turbine of Pyong-Tak power plant was selected as a target to apply the DME. Combustion tests were conducted by comparing DME with methane, which is a major component of natural gas, in terms of combustion instability, $NO_X$ and CO emissions, and the outlet temperature of the combustion chamber. The results of the performance tests show that DME is very clean but has a low combustion efficiency in low load condition. From the results of the fuel nozzle temperature we have ascertained that DME is easy to flash back, and this property should be considered when operating a gas turbine and retrofitting a burner.

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수소 에너지 밀도가 높은 디메틸에테르(DME) 제조 촉매에 관한 연구 (A Study on the Catalyst for the Synthesis of DME with Hydrogen Energy Density)

  • 장은미;백영순;오영삼
    • 한국수소및신에너지학회논문집
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    • 제19권5호
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    • pp.445-452
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    • 2008
  • DME(Dimethyl ether) Dimethyl Ether (DME) is a new clean fuel and an environmental-benign energy resource. In comparison with other fuels, DME rapidly decomposes into carbon dioxide ($CO_2$) and water in the atmosphere without forming ozone. It can be manufactured from various energy sources including natural gas, coal, biomass and spent plastics. In addition to its environmentally friendly properties, DME is considered as one of the most promising candidates for the substitute of LPG and diesel fuel. In this work, we will be studied to find optimized condition for the catalyst of DME energy manufacture from hydrogen and carbon oxide and its chemical and physical characteristics.