• 제목/요약/키워드: bio-DME

검색결과 16건 처리시간 0.021초

온실에서 상추와 배추를 이용한 DME 원료 난방 효율분석 (Assessment of the Effect of Dimethyl Ether (DME) Combustion on Lettuce and Chinese Cabbage Growth in Greenhouse)

  • 쟌타 구마 바삭;와카스 카심;파와드 칸;프랑크 갼 오시레;이용진;에린지 아루모지;박지훈;조원준;김현테
    • 생물환경조절학회지
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    • 제28권4호
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    • pp.293-301
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    • 2019
  • 본 연구는 온실의 온도와 $CO_2$농도를 높이기 위해 DME버너용 연료로 DME가스를 사용했을 때 DME 연소가스의 성능을 결정하고 겨울에 상추와 양배추의 엽록소 함량 그리고 무게와 건조무게에 대한 영향정도를 조사하기 위해 수행되었다. 각각 온실1과 온실2에 처방 된 DME-1과 DME-2 처방은 덕트의 평균 DME 유량 $17.4m^3min^{-1}$$10.2m^3min^{-1}$으로 구성됐으며, 대조군(DME-3)으로 남겨진 온실3에는 DME 가스가 공급되지 않았다. DME 공급 시간은 각각 주차 별로 1주차는 하루당 0.5시간, 2주차는 1시간, 3주차는 1.5시간, 4주차는 2시간으로 설정하였다. 각각 처방마다 엽록소 함량과 상추와 배추의 건조 전, 후 중량을 측정했으며, 연구결과 무처리구인 온실3과 비교하여 온실1과 온실2의 $CO_2$ 농도는 각각 265%, 174% 증가하였고, 온도의 경우 $4.8^{\circ}C$, $3.10^{\circ}C$ 상승하였다. DME 가스를 제외한 다른 조건이 같은 온실에서 재배된 상추와 양배추의 엽록소 함량과 생체중, 건물중은 온실1에서 (유의적으로) 가장 높았으며, 온실2는 대조구 온실보다 높았다. 이러한 결과는 DME가스 연소에 의한 $CO_2$ 농도 차이에 기인된 것으로 판단된다. 일반적으로 가스연소에 의해 발생되는 유해가스 증상은 나타나지 않았으며 동절기 난방과 $CO_2$ 공급이 동시에 필요할 경우 DME가스가 기존의 경유 또는 LPG 등을 대체할 수 있는 가능성을 확인하였다. 향후 정밀한 연구를 통하여 효율적인 난방방식으로의 검토가 적극 필요하다고 판단된다.

수소 생산을 위한 Cu/ZnO/Al2O3 촉매상에서 DME의 수증기 개질 반응 연구 (A Study on the Steam Reforming Reaction of DME on Cu/ZnO/Al2O3 Catalyst for Hydrogen Production)

  • 변현승;구윤지;오주희;반재성;나영진;이제설;조원준
    • 한국수소및신에너지학회논문집
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    • 제34권6호
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    • pp.581-586
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    • 2023
  • As the development of alternative energy is required due to the depletion of fossil fuels, interest in the use of hydrogen energy is increasing. Hydrogen is a promising clean energy source with high energy density and can lead to the application of environmentally friendly technologies. However, due to difficulties in production, storage, and transportation that prevent the application of hydrogen-based eco-friendly technology, research on reforming reactions using dimethyl ether (DME) is being conducted. Unlike other hydrocarbons, DME is attracting attention as a hydrogen carrier because it has excellent storage stability and transportability, and there is no C-C bond in the molecule. The reaction between DME and steam is one of the reforming processes with the highest hydrogen yield in theory at a temperature lower than that of other hydrocarbons. In this study, a hydrogen reforming device using DME was developed and a catalyst prepared by supporting Cu in alumina was put into a reactor to find optimal hydrogen production conditions for supplying hydrogen to fuel cells while changing reaction temperature (300-500℃), pressure (5-10 bar), and steam/carbon ratio (3:1 to 5:1).

Diesel, DME, Bio-diesel 연료가 실제 도로 주행 조건에서 입자상물질 배출에 미치는 영향 파악 (On-road Investigation of PM Emissions according to Vehicle Fuels (Diesel, DME, and Bio-diesel))

  • 이석환;김홍석;박준혁;조규백
    • 한국자동차공학회논문집
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    • 제20권3호
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    • pp.88-97
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    • 2012
  • To measure the traffic pollutants with high temporal and spatial resolution under real conditions, a mobile emission laboratory (MEL) was designed. The equipment of the mini-van provides gas phase measurements of CO, NOx, CO2 and THC (Total hydrocarbon), and number density & size distribution measurements of fine and ultra-fine particles by a fast mobility particle sizer (FMPS) and a condensation particle counter (CPC). The inlet sampling port above the bumper enables the chasing of different type of vehicles. This paper introduces the technical details of the MEL and presents data from the experiment in which a MEL chases a city bus fuelled by diesel, DME and Bio-diesel. The dilution ratio was calculated by the ratio of ambient NOx and tail-pipe NOx. Most particles from the bus fuelled by diesel were counted under 300 nm and the peak concentration of the particles was located between 30 and 60 nm. However, most particles in the exhaust of the bus fuelled by DME were nano-particles (diameter: less than 50 nm). The bus fuelled by Bio-diesel shows less particle emissions compare to diesel bus due to the presence of the oxygen in the fuel.

DME 연료 생산 및 이용기기의 개발현황 (The Status of DME Development and Utilization as a Fuel)

  • 백영순;조원준;오영삼
    • 에너지공학
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    • 제16권2호
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    • pp.73-82
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    • 2007
  • 세계 에너지 수요는 개발도상국을 중심으로 하여 폭발적으로 증가하고 있는 반면 땅 속에 매장되어 있는 화석연료는 점점 줄어들고 있고 화석연료의 사용으로 발생되는 지구 환경오염도 해결해야 할 중요한 과제이다. 이 시점에서 화석연료의 활용도를 높이고 환경친화적인 연료로의 개발이 매우 필요가 있다. 최근 이러한 문제를 해결할 수 있는 연료로서 제시되고 있는 DME 연료에 대하여 국내?외 기술개발, 보급 및 시장현황을 소개하고자 한다.

디젤연소가능 청정연료(ULSD, Bio-Diesel, DME)엔진의 극미세입자 정량화 및 촉매 영향 (Characteristics of Nano-particle Emitted by Auto-ignited Engine with ULSD, Bio-diesel and DME Fuel and Effects of Oxidation Catalyst on Its Reduction)

  • 이진욱;배충식
    • 한국자동차공학회논문집
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    • 제17권3호
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    • pp.81-89
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    • 2009
  • In this experimental study, the effects of clean alternative fuels compatible with diesel combustion on nano-sized particle emission characteristics were investigated in a 0.5L auto-ignited single-cylinder engine with a compression ratio of 15. Because the number concentration of nano-sized particles emitted by automotive engine, that are suspected of being hazardous to human health and environment, might increase with engine fuel considerably and recently attracted attention. So a ultra-low sulfur diesel(ULSD), BD100(100% bio-diesel) and Di-Methyl Ether(DME) fuels used for this study. And, as a particle measuring instrument, a fast-response particle spectrometer (DMS 500) with heated sample line was used for continuous measurement of the particle size and number distribution in the size range of 5 to 1000nm (aerodynamic diameter). As this research results, we found that this measurements involving the large proportion of particles under size order of 300nm and number concentration of $4{\times}10^9$ allowed a single or bi-modal distribution to be found at different engine load conditions. Also the influence of oxygen content in fuel and the catalyst could be a dominant factor in controlling the nano-sized particle emissions in auto-ignited engine.

디메틸에베르와 초임계이산화탄소의 혼합물에서 Simvastatin 약물의 상거동 (Phase Behavior of Simvastatin Drug in Mixtures of Dimethyl Ether and Supercritical Carbon Dioxide)

  • 신은경;오동준;이병철
    • 청정기술
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    • 제13권4호
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    • pp.237-243
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    • 2007
  • 고지혈증 치료제로 잘 알려져 있는 난용성 약물인 심바스타틴(Simvastatin)을 대상으로 더메틸에테르를 용매로 사용하고 초임계이산화탄소를 역용매로 사용하는 초임계 역용매 재결정법에 의해 약물 미세입자를 제조할 때, 운전조건을 설정하는데 활용될 수 있는 가이드라인을 제공하기 위하여 simvastatin/디메틸에테르/초임계이산화탄소 3성분계 혼합물의 상거동을 연구하였다. 가변부피 투시 셀이 장착된 고압 상평형장치를 사용하여 여러 가지 조건에서 3성분계 혼합물의 구름점(cloud point)을 측정함으로서 디메틸에테르와 초임계이산화탄소의 혼합용매에서 simvastatin의 용해도를 온도, 압력, 용매 조성의 함수로 결정하였다. 주어진 온도에서 simvastatin 약물의 용해도는 디메틸에테르의 조성과 압력이 증가할수록, 온도가 감소할수록 증가하였다.

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DME를 연료로 하는 압축 착화 엔진용 고압연료 펌프의 성능 비교 연구 (A Comparative Study on the Performance of High Pressure Fuel Pumps for Compression Ignition Engines Fueled by DME)

  • 정재희;조원준;임옥택
    • 한국수소및신에너지학회논문집
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    • 제34권1호
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    • pp.59-68
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    • 2023
  • In this study, the performance of high-pressure fuel pumps was compared to find a high-pressure pump suitable for dimethyl ether (DME) fuel, and to establish a database of basic data on flow rates. The use of DME in compression ignition engines can reduce pollutant emissions. The cetane value of DME is higher than that of diesel fuel. The physical properties of DME are similar to liquefied gasoline gas (LPG), and when pressurized at a pressure of 6 bar or more, it changes from gas to liquid. Two types of high pressure pumps used in this study were independent injection type pump and a wobble plate type pump. Two high-pressure pumps with different injection types were compared. By measuring and comparing the performance changes of the two high-pressure pumps, a pump suitable for DME was selected and performance improvement measures were proposed. The changed experimental conditions to measure the performance change of the high pressure pump were increased in the units of 100 to 1,000 rpm and 100 rpm, and the experiment was performed at common rail pressures 300 and 400 bar. it was confirmed that the DME inside the fuel supply system remained in a liquid state through temperature sensors, pressure sensors, and pressure gauges. As a result of the experiment, it was confirmed that the flow rate discharged from the high-pressure fuel pump increased as the motor rotational speed increased, and the flow rate of the high-pressure fuel pump

Taguchi Method 을 이용한 DME 고압 연료 펌프에 대한 고성능 수치 해석 (A Numerical Analysis for High Performance on DME High Pressure Fuel Pump Using Taguchi Method)

  • 베르니케 페브리아나 사모서;조원준;임옥택
    • 한국수소및신에너지학회논문집
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    • 제32권6호
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    • pp.636-641
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    • 2021
  • Using numerical analysis, various factors influencing the performance development of high-pressure pumps for Dimethyl Ether (DME) engines were identified and the impact of each factor was evaluated using Taguchi method. DME fuels are more compressive than diesel fuels and have the lower heat generation, so it is necessary to increase the size of the plunger and speed (RPM) of the pump as well. In addition, it is necessary to change the shape and design of control valve to control the discharge flow and pressure. In this study, various variables affecting the performance and flow rate increase of high-pressure pumps for DME engines are planned using Taguchi method, and the best design method is proposed using correlation of the most important variables. As a result, we were able to provide the design value needed for a six-liter engine and provide optimal conditions. The best combination factors to optimize the flow rate at RPM 2,000 and diameter plunger with 20 mm. The regression equation can also be used to optimize the flow rate; -8, 13+0, 2552 RPM +54, 17 diam. Plunger.

유동층 반응기에서 목질계 바이오매스의 가스화반응 (Gasification of woody biomass in a fluidized bed reactor)

  • 김승수;김진수;서영훈;조원준;백영순;송택용
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 추계학술대회 초록집
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    • pp.102.1-102.1
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    • 2010
  • 바이오매스(Biomass)는 지구상에서 에너지원으로 이용될 수 있는 모든 식물과 미생물을 총칭하는 의미로 사용된다. 최근 바이오매스를 에너지자원화 시키는 방법으로 주목받는 열화학적 전환(Thermo-chemical conversion) 반응은 산소가 없이 혹은 희박한 조건에서 바이오매스에 열과 압력을 가하거나 공기나 수증기 등의 가스화제와 반응하여 바이오오일(Bio-oil) 및 합성가스(Syngas)로 변화하는 프로세스를 의미한다. 바이오매스로부터 바이오 DME(Di-Methyl Ether) 생산을 위한 합성가스를 제조하기 위해서 국내 산림자원을 대상으로 열분해반응 특성연구를 수행하였다. 또한 이들 물질로부터 바이오 DME 합성을 위해 최적의 합성가스 제조를 위한 타당성 연구를 수행하였다. 반응온도 $800{\sim}900^{\circ}C$에서 가스화 수율은 78~80%, 촤 수율은 17~20%, 타르 수율은 4~10%였고, 합성가스($H_2$/CO)비는 0.9~1.6였다.

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DME 연료에 첨가제를 혼합하였을 때의 연소 특성 및 배출가스 특성에 관한 연구 (Effects of DME Additives on Combustion Characteristics and Nano-particle Distributions in a Single Cylinder Compression Ignition Engine)

  • 권석주;차준표;강민구;이창식;박성욱;임영관
    • 한국자동차공학회논문집
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    • 제20권5호
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    • pp.19-25
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    • 2012
  • This study describes effects of DME additives on combustion and exhaust emissions characteristics including nano-particle in a single cylinder compression ignition engine. Considered additives include bio-diesel, n-butanol, and MTBE for increasing kinematic viscosity. Among three additives, n-butanol showed the greatest kinematic viscosity. In addition MTBE showed the highest vapor pressure. In the present study mixing ratios of additives were kept constant at 1 and 10% by volume. Experiments were performed at 1200rpm engine speed and nano-particles were measured by SMPS (Scanning mobility particle sizer) devices. Results of combustion characteristics showed that considered additives had little effects on combustion pressure. However, patterns of heat release rate were dependent on properties of additives. Nano-particles of MTBE were the lowest among considered additives.