• 제목/요약/키워드: ethylene gas

검색결과 356건 처리시간 0.029초

Novel Composite Membranes Comprising Silver Salts Physically Dispersed in Poly(ethylene-co-propylene) for the Separation of Propylene/Propane

  • Kim, Jong-Hak;Min, Byoung-Ryul;Kim, Yong-Woo;Kang, Sang-Wook;Won, Jong-Ok;Kang, Yong-Soo
    • Macromolecular Research
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    • 제15권4호
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    • pp.343-347
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    • 2007
  • Novel composite membranes, which delivered high separation performance for propylene/propane mixtures, were developed by coating inert poly(ethylene-co-propylene) rubber (EPR) onto a porous polyester substrate, followed by the physical distribution of $AgBF_4$. Scanning electron microscopy-wavelength dispersive spectrometer (SEM-WDS) revealed that silver salts were uniformly distributed in the EPR layer. The physical dispersion of the silver salts in the inert polymer matrix, without specific interaction, was characterized by FT-IR and FT-Raman spectroscopy. The high separation performance was presumed to stem from the in-situ dissolution of crystalline silver ionic aggregates into free silver ions, which acted as an active propylene carrier within a propylene environment, leading to facilitated propylene transport through the membranes. The membranes were functional at all silver loading levels, exhibiting an unusually low threshold carrier concentration (less than 0.06 of silver weight fraction). The separation properties of these membranes, i.e. the mixed gas selectivity of propylene/propane ${\sim}55$ and mixed gas permeance ${\sim}7$ GPU, were stable for several days.

Determination of trace icing Inhibitors (ether type) in free-floating fuels by gas chromatography-mass spectrometry

  • Shin, Ho-Sang;Ahn, Hye-Sil;Jung, Dong-Gyun
    • 한국지하수토양환경학회:학술대회논문집
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    • 한국지하수토양환경학회 2003년도 총회 및 춘계학술발표회
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    • pp.196-200
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    • 2003
  • A gas chromatography/mass spectrometric assay method was developed for the simultaneous determination of ethylene glycol monomethyl ether (EGME) and diethylene glycol monomethyl ether (DEGME) in spilled aviation fuels. Ethylene glycol monobutyl ether (EGBE) and ethylene glycol monoethyl ether (EGEE) were used as internal standard and surrogate, respectively. The sample preparation consists of back-extraction with 7 mL of methylene chloride after extraction of 50 mL of fuel with 2 mL of water. The extract was concentrated to dryness and dissolved with 100L of methanol and analyzed by CC-MS (SIM). The peaks had good chromatographic properties by using semi-polar column and the extraction of these compounds from fuel also gave high recoveries of 75 and 85 % with small variations for EGME and DEGME, respectively. Method detection limits were 1.3 ng/mL for EGME and 1.0 ng/mL for DEGME in spilled fuel. The method may be useful for fuel-type differentiation between kerosene and JP-8, which may originate from the storage tank.

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마이크로웨이브 플라즈마에 의한 메탄의 C2+계 탄화수소로의 전환반응에 관한 연구 (A Study on Conversion of Methane to C2+ Hydrocarbons by a Microwave Plasma)

  • 조원일;백영순;방효선;김영채;문세기
    • 공업화학
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    • 제9권1호
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    • pp.94-100
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    • 1998
  • 천연가스의 주성분인 메탄의 마이크로웨이브 플라즈마 촉매반응에 의한 C2+ 탄화수소로의 전환반응을 고찰하였다. 플라즈마 출력의 증가(40~120 watt)와 유량이 감소(40~5mL/min)함에 따라서 메탄의 C2+ 생성물로의 전환율을 29.2%에서 42.2%로 향상되었으며, 촉매를 플라즈마와 함계 사용하여 에틸렌과 아세틸렌의 선택도를 향상시키는 동시에 높은 전환율을 유지할 수 있다. 실험에 사용한 여러 촉매중에는 Fe계의 촉매가 가장 높은 에틸렌의 선택도(30%)를 나타내었다. 실제 천연가스의 전환실험에서는 C2+ 생성물의 수율이 33.3%에서 46%의 범위를 보였다. 순수한 메탄이 원료였을 때 보다 높은 C2+ 수율이 얻어진 것은 천연가스가 메탄 보다 반응성이 높은 성분인 에탄과 프로판등을 함유하고 있기 때문으로 생각된다.

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Hydrox Gas 혼합연소특성 에 관한 연구 (A Study on the Characteristics of Mixed Combustion for Hydrox Gas)

  • 김홍건;곽이구
    • 한국생산제조학회지
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    • 제19권2호
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    • pp.230-234
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    • 2010
  • Hydrox gas which is the mixed gas of hydrogen and oxygen gained fromwater electrolysis is one of the new clean energy sources and thus is researched and commercialized actively. Especially, it can be replaced the fossil energy and shows the better quality compared to the conventional energy such as LPG or acetylene gas. The mixed gas of hydrogen and oxygen is gained from water electrolysis reaction. It has constant volume ratio 2:1 of hydrogen and oxygen, and it is used as a source of thermal energy by combustion reaction. Further, hydrox gas is nearly a mixed ideal gas combusting itself completely and its combustion shows anunique characteristics of implosion. In this study, temperature rise effects on hydrox gas content through mixed combustion test of kerosene and hydrox gas and LPG and hydrox gas are investigated. it is also confirmed that economy of mixed combustion of hydrox gas as effective energy is fairly probable.

Poly(ethylene glycol)diacrylate/poly(propylene glycol)diacrylate 막의 이산화탄소 기체 투과특성에 관한 연구 (Gas Permeation Properties of $CO_2$ Through Poly(ethylene Glycol) Diacrylate/Poly(Propylene Glycol) Diacrylate Membrane)

  • 임지원;남상용;이선용;윤태일
    • 멤브레인
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    • 제14권3호
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    • pp.250-257
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    • 2004
  • 이산화탄소 분리에 이용하기 위하여 PEG (Poly(ethylene glycol)diacrylate)와 PPG (Poly(propylene glycol) diacrylate)를 광학 중합반응(Photopoly merization)을 이용하여 제조하였다. PEG와 PPG는 분자량이 각각 258과 540이었다. PEG와 PPG의 질량 혼합비(wt%)를 9:1, 8:2, 7:3, 6:4, 5:5로 변화시키면서 막을 제조하였다. $25^{\circ}C$에서 PEG/PPG (9:1)의 이산화탄소 투과도는 28.9 barrel 으로 나타났으며, 선택도($PCO_2$/$PN_2$)는 57.9로 나타났다. 같은 온도에서 PEG/PPG(5:5)로 조성을 변화시켰을 때 이산화탄소 투과도는 40.4 Barrer, 기체선택도($PCO_2$/$PN_2$)는 51.8를 나타냈다 이산화탄소의 투과도는 5:5 > 6:4 > 7:3 > 8:2 > 9:1의 경향을 나타내었다. $35^{\circ}C$로 승온을 하는 경우에 PEG/PPG (9:1)는 45.4 Baller, 선택도($PCO_2$/$PN_2$)는 48.2을 나타냈으며, PEG/PPG (5:5)의 이산화탄소 투과도는 78.9 Barrer을 나타내고 선택도($PCO_2$/$PN_2$)는 33.2로 나타났다. 각각의 온도에서 이산화탄소의 기체선택도($PCO_2$/$PN_2$)는 PPG의 함량이 증가하면서 감소하는 경향을 나타내었다.

저항회로의 개폐불꽃에 의한 폭발성 가스의 점화한계에 관한 연구 (A Study on The Ignition Limit of Flammable Gases by Discharge Spark of Resistive Circuit)

  • 이춘하
    • 한국가스학회지
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    • 제1권1호
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    • pp.106-112
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    • 1997
  • 본 연구는 직류 저항회로의 개폐불꽃에 의한 폭발성 가스의 점화한계를 실험적으로 고찰하였다. 실험은 IEC형 불꽃점화 시험장치의 폭발용기에 폭발성 가스(메탄-공기 프로판-공기, 에틸렌-공기, 수소-공기)를 각각 넣고 텅스텐 전극과 카드뮴 전극사이에서 발생하는 3,200회의 개폐불꽃에 의한 점화유무를 확인하므로서 점화한계를 구하였다. 또한 실험장치의 점화감도교정을 실험한 후에 실시하므로서 실험의 정확성을 기하였다. 실험결과 최소 점화 전류값을 갖는 최소점화한계농도는 메탄-공기 8.3 [$Vol\%$], 프로판-공기 5.25[$Vol\%$], 에틸렌-공기 7.8[$Vol\%$], 수소-공기 21[$Vol\%$]로서 기존의 실험결과와 유사한 결과를 나타내었다. 또한 최소점화한계농도에서 전압과 최소점화잔류와의 관계를 구한 결과 최소점화한계는 메탄, 프로판, 에틸렌, 수소가스의 순서로 낮아졌고 점화전류의 크기는 전원전압의 크기와 반비례하고, 전극의 과열현상으로 인하여 전압 약 20(V)이하에서는 최소점화전류가 2(A)를 넘으면서 심화한계곡선이 급격히 상승한다는 것 등을 알 수 있었다.

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고분자전해질연료전지의 냉각수 누설에 대한 연구 (Coolant Leak Effect on Polymer Electrolyte Membrane Fuel Cell)

  • 송현도;강정탁;김준범
    • 전기화학회지
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    • 제10권4호
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    • pp.301-305
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    • 2007
  • 연료전지 운전 중에 스택(stack) 분리판 접착부위나 다른 경로로 부동액이 누설될 경우에는 화학적 반응에 영향을 주어 성능의 저하가 발생할 수 있다. 본 연구에서는 부동액이 누설되었을 경우의 성능 거동을 관찰하는 실험을 수행하였다. $400mA/cm^2$ 전류밀도 조건에서 마이크로 펌프를 이용하여 부동액을 주입하였으며 상대습도 100%/100%와 수소와 공기의 양론비는 1.5/2.0으로 고정하여 실험을 수행하였다. 3 cell stack을 이용하여 부동액을 주입한 후 정전류 회복 실험을 수행한 결과 cathode측에 부동액을 주입하였을 경우에는 성능이 회복되었고 anode측에 부동액을 주입하였을 경우에는 성능이 회복되기 어려운 것으로 나타났다. Anode측이 회복되지 못하는 이유로는 ethylene glycol의 산화반응에서 발생하는 불순물에 의한 피독 현상과 GDL과 3상 계면에 ethylene glycol이 물리적으로 흡착하였을 경우 반응에 필요한 연료 공급의 방해로 인한 성능 저하를 예상할 수 있다. 성능 저하에 영향을 주는 두 가지 변수를 확인하는 실험을 수행하였다. 회복 실험은 anode측에 water pump를 이용하여 질소 기체와 물을 동시에 공급하는 방법으로 실험을 수행하였고, 1시간 간격으로 성능 회복 유무를 확인하였다. 성능 평가는 polarization curve, cyclic voltammetry(CV), electrochemical impedance spectroscopy(EIS)를 사용하였으며, 정량분석은 gas chromatography를 이용하여 분석하였다. 부동액 주입 후 성능은 크게 저하되었고 정전류 회복 실험에서도 성능 회복은 미미하게 나타났다. 이 후 물 주입회복 실험을 수행하였고 회복 실험을 수행한 2시간 이후에는 93% 이상의 회복을 관찰할 수 있었다.

EFFECTS OF GAS EXHAUSTED FROM GASOLINE ENGINE ON PLANTS GROWN IN THE GREENHOUSE

  • Sugimoto, H.;Yamashita, J.
    • 한국농업기계학회:학술대회논문집
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    • 한국농업기계학회 1993년도 Proceedings of International Conference for Agricultural Machinery and Process Engineering
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    • pp.487-494
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    • 1993
  • In order to establish a fully automatized pest control in the a greenhouse , the authors developed a prototype of microcomputer installed spraying vehicle which traveled along the furrows. Since a power sprayer mounted on the vehicle was driven by gasoline engine, plants grown in the greenhouse might be injured by the gas exhausted from the engine. Thus , effects of exhausted gas on photosynthetic rate and the shedding of flowers and buds of plants were examined. At first, effects of exhausted gas on photosynthetic rate of potted sweet pepper (Capsicum annuum L.) and eggplant(Solanum melongena L.) plants were examined. In a closed vinyl house the engine was operated for 5 minutes and plants were exposed to the gas for 2hours in the daytime on a fine day. Photosynthetic rate did not significantly decreased by the treatment in both species. Secondly, effects of ehtylene on the shedding of flowers and buds of sesame (Sesamum indicum L. ) were examined. In the closed and partiall opened vinyl house, the engine was operated for 5 minutes and potted sesame plants were exposed to the gas for 12 hours in the night. In partially opened vinyl house, ethylene concentration decreased to 0 ppm 3 hours after the engine was stopped and flower and bud did not shed. In contrast, when vinyl house was closed ethylene concentration was 0.75 pm even 12 hours after the engine was stopped and flowers and buds shed markedly and epinasty was observed in upper young leaves. As mentioned above , it was revealed that injury of plants in the greenhouse caused by the gas exhausted from a gasoline engine could be prevented by providing suitable ventilation.

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Use of plant growth-promoting rhizobacteria to control stress responses of plant roots

  • Kang, Bin-Goo;Kim, Woo-Taek;Yun, Hye-Sup;Chang, Soo-Chul
    • Plant Biotechnology Reports
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    • 제4권3호
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    • pp.179-183
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    • 2010
  • Ethylene is a key gaseous hormone that controls various physiological processes in plants including growth, senescence, fruit ripening, and responses to abiotic and biotic stresses. In spite of some of these positive effects, the gas usually inhibits plant growth. While chemical fertilizers help plants grow better by providing soil-limited nutrients such as nitrogen and phosphate, overusage often results in growth inhibition by soil contamination and subsequent stress responses in plants. Therefore, controlling ethylene production in plants becomes one of the attractive challenges to increase crop yields. Some soil bacteria among plant growth-promoting rhizobacteria (PGPRs) can stimulate plant growth even under stressful conditions by reducing ethylene levels in plants, hence the term "stress controllers" for these bacteria. Thus, manipulation of relevant genes or gene products might not only help clear polluted soil of contaminants but contribute to elevating the crop productivity. In this article, the beneficial soil bacteria and the mechanisms of reduced ethylene production in plants by stress controllers are discussed.

플라즈마 충진 촉매 시스템을 이용한 에틸렌 저감 연구 (Decomposition of Ethylene using a Hybrid Catalyst-packed Bed Plasma Reactor System)

  • 이상백;조진오;장동룡;목영선
    • 한국대기환경학회지
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    • 제30권6호
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    • pp.577-585
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    • 2014
  • A series of experiments using atmospheric-pressure non-thermal plasma coupled with transition metal catalysts were performed to remove ethylene from agricultural storage facilities. The non-thermal plasma was created by dielectric barrier discharge, which was in direct contact with the catalyst pellets. The transition metals such as Ag and $V_2O_5$ were supported on ${\gamma}-Al_2O_3$. The effect of catalyst type, specific input energy (SIE) and oxygen content on the removal of ethylene was examined to understand the behavior of the hybrid plasma-catalytic reactor system. With the other parameters kept constant, the plasma-catalytic activity for the removal of ethylene was in order of $V_2O_5/{\gamma}-Al_2O_3$ > $Ag/{\gamma}-Al_2O_3$ > ${\gamma}-Al_2O_3$ from high to low. Interestingly, the rate of plasma-catalytic ozone generation was in order of $V_2O_5/{\gamma}-Al_2O_3$ > ${\gamma}-Al_2O_3$ > $Ag/{\gamma}-Al_2O_3$, implying that the catalyst activation mechanisms by plasma are different for different catalysts. The results obtained by varying the oxygen content indicated that nitrogen-derived reactive species dominated the removal of ethylene under oxygen-lean condition, while ozone and oxygen atoms were mainly involved in the removal under oxygen-rich condition. When the plasma was coupled with $V_2O_5/{\gamma}-Al_2O_3$, nearly complete removal of ethylene was achieved at oxygen contents higher than 5% by volume (inlet ethylene: 250 ppm; gas flow rate: $1.0Lmin^{-1}$; SIE: ${\sim}355JL^{-1}$).