• Title/Summary/Keyword: Ethanol gas

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Discrimination of Gasoline and Diesel Fuels Using Oxide Semiconductor Gas Sensors

  • Moon, Young Kook;Shin, Min Sung;Jo, Young-Moo;Lim, Kyeorei;Lee, Jong-Heun
    • Journal of Sensor Science and Technology
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    • v.27 no.4
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    • pp.221-226
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    • 2018
  • Misfueling accidents significantly damage the engines of both gasoline and diesel vehicles, and should be avoided by rapid and accurate fuel discrimination. Gasoline fuel contains bioethanol. Thus, the detection of ethanol vapor produced by gasoline can be used to distinguish between gasoline and diesel. In the present study, Pt-doped $SnO_2$ hollow nanospheres, Mg-doped $In_2O_3$ hollow microspheres, and Pt-doped ZnO nanostructures have been used as gas sensors to discriminate between gasoline and diesel fuels. All three sensors are able to detect and discriminate between gases evaporating from gasoline and diesel. Among the sensors, the Mg-doped $In_2O_3$ hollow microspheres show a significant gas response (resistance ratio = 4.97) quickly (~3 s) after exposure to gasoline-evaporated gas at $225^{\circ}C$, but did not show any substantial response to diesel-evaporated gas. This demonstrates that gasoline and diesel fuels can be discriminated using small and cost-effective oxide semiconductor gas sensors.

A Study on the Safety of Alcohol-based Hand Sanitizers (알코올을 주성분으로 하는 손소독제의 안전성 연구)

  • Sun-Ok Jung;Chun-Yeong Lee;Hoe-Jin Ryu;Hee-Jin Choi;Ji-Young Kim;Chae-Man Choi;In-Sook Hwang;Yong-Seung Shin
    • Journal of Korean Society of Occupational and Environmental Hygiene
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    • v.33 no.1
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    • pp.34-39
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    • 2023
  • Objectives: In this study, the safety of alcohol-based hand sanitizers (ABHSs) for quasi-drugs and cosmetics was investigated by analyzing the ethanol content, which is an active ingredient with a sterilizing effect, and methanol, which is toxic. Methods: Forty-one ABHSs were purchased at large supermarkets and online stores. Ethanol quantification was performed by gas chromatography-flame ionization detector, and methanol quantification was performed by headspace-gas chromatography-mass spectrometry. Results: The ethanol content of ABHS in quasi-drugs was 49.6-67.8%, which was suitable for standard manufacturing procedures for external disinfectants, and the ethanol content of ABHS in cosmetics was 9.1-61.3%. The methanol content of ABHS in quasi-drugs ranged from not detected(N.D.)-131.8 ppm, which was suitable for the methanol detection standard of ethanol raw materials in the Korean Pharmacopoeia. The methanol content of ABHS in cosmetics was 23.4-859.7 ppm, which was suitable for the detection limit of methanol in cosmetics. Conclusions: The ethanol and methanol content of ABHS was judged to be safe. When selecting an ABHS to be used for sterilization, it seems necessary to check the content of ethanol, an active ingredient, and use it according to its intended purpose.

The Study on Preparation Parameters of $TiO_2$Catalyst for Photodecomposition of Ethanol as a VOC (VOC물질중 에탄올 광분해반응을 위한 $TiO_2$촉매의 제초변수 고찰)

  • 이병용;김성욱;정석진
    • Journal of Korean Society for Atmospheric Environment
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    • v.17 no.4
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    • pp.363-370
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    • 2001
  • In this study, TiO$_2$, the popular photocatalyst, was used to decompose ethanol. TiO$_2$was prepared by the sol -gel method and coated on pyrex stick. A 15W, UV-A lamp was used as the UV light source and il gas chromatography (HP 5890) was used to confirm the concentrations of ethanol, $CO_2$and the intermediates. Variation of preparation parameters and calcination temperature for TiO$_2$photocatalysts in the sol -gel method caused changes of ethanol decomposition activity. The best ethanol photodecomposition activity was obtained on the sample when prepared with 0.14 mol of HCI, a mol of ethanol and 1.3 mol of TTIP ware mixed in sol-gel process and calcinated at 50$0^{\circ}C$ for 3 hours. Acetaldehyde was detected as an intermediate and decomposed to carbon dioxide and water at the end of the reaction.

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Bimetallic Zeolitic Imidazolate Framework Derived Co3O4/CoFe2O4 Catalyst Loaded In2O3 Nanofibers for Highly Sensitive and Selective Ethanol Sensing (금속-유기 골격체 열분해를 통해 합성된 Co3O4/CoFe2O4 첨가 In2O3나노섬유를 이용한 고감도 고선택성 에탄올 센서)

  • Lee, Soo-Min;Kim, Tae-Hyun;Jo, Young-Moo;Kim, Ki Beom;Lee, Jong-Heun
    • Journal of Sensor Science and Technology
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    • v.30 no.2
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    • pp.94-98
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    • 2021
  • In this study, pure and Co3O4/CoFe2O4-loaded Indium oxide (In2O3) nanofibers were synthesized by the electrospinning of an Indium/Polyvinylpyrrolidone precursor solution containing cobalt and iron bimetallic zeolitic imidazolate frameworks and subsequent heat treatment. The ethanol, toluene, p-xylene, benzene, carbon monodxide, and hydrogen gas sensing characteristics of the solution were measured at 250-400 ℃. 0.5 at%-Co3O4/CoFe2O4-loaded In2O3 nanofibers exhibited extreme response (resistance ratio - 1) to 5 ppm of ethanol (210.5) at 250 ℃ and excellent selectivity over the interfering gases. In contrast, pure In2O3 nanofibers exhibited relatively low responses to all the analyte gases and low selectivity above 250-400 ℃. The superior response and selectivity toward ethanol is explained by the catalytic roles of Co3O4 and CoFe2O4 in gas sensing reaction and the electronic sensitization induced by the formation of p (Co3O4/CoFe2O4)-n (In2O3) junctions.

The Enhancement of Selectivity in Thick Film SnO2 Gas Sensors by Additives and Pattern Recognition (첨가제 및 패턴인식에 의한 후막 SnO2 가스센서의 선택성 향상)

  • 정해원;김종명;박희숙;윤기현
    • Journal of the Korean Ceramic Society
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    • v.40 no.11
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    • pp.1073-1077
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    • 2003
  • The Sn $O_2$-based gas sensors can detect inflammable and toxic gases of low concentration by the modulation of surface resistance, but they lack in selectivity on the whole. To give selectivity to the Sn $O_2$-based gas sensors, studies on the sensing mechanism, selective gas sensing materials and signal processing techniques are demanded. Ethanol (C$_2$ $H_{5}$OH) and acetonitrile ($CH_3$CN) were confirmed to undergo catalytic oxidation on Sn $O_2$ by gas chromatography. PdCl$_2$-doped Sn $O_2$ showed excellent sensitivity to ethanol and acetonitrile, while La$_2$ $O_3$-doped Sn $O_2$ showed excellent sensitivity to ethanol, but poor sensitivity to acetonitrile. Using these two sensors and pattern recognition, the selectivity to acetonitrile is greatly enhanced. The minimum detection level of acetonitrile was 15 ppm in air and 20 to 100 ppm when exposed to interfering gases together with acetonitrile.

Study on the Process Optimization for the Ethanol Scrubber (에탄올 스크러버의 공정 최적화에 대한 연구)

  • SANGGYUN NOH
    • Transactions of the Korean hydrogen and new energy society
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    • v.35 no.4
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    • pp.410-414
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    • 2024
  • In this paper, scrubber modeling and optimization works have been performed for the removal of ethanol contained in the feed nitrogen gas. Ethanol content at scrubber top gas stream was reduced to 20 ppm in mole by contacting counter-currently with water as a solvent. Some of the liquid withdrawn at the scrubber bottom stream has been recycled to the scrubber in order to reduce the amount of waste water.

The effect of Pd activator and annealing temperatures on the response characteristecs of the ${SnO_2}/{Al_2}{O_3}$gas sensor (Pd활성제와 열처리 온도에 의한 ${SnO_2}/{Al_2}{O_3}$ 가스센서에 미치는 감응효과)

  • Jeon, Chun-Saeng
    • Korean Journal of Materials Research
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    • v.4 no.3
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    • pp.295-300
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    • 1994
  • This paper is aimed to study the effect of Pd activator, the annealing temperature, and operating temperatures on the response characteristics of the $SnO_2/Al_2O_3$ sensor. The resistance of device has shown minimum value when annealing temperature and operating temperature of device are $550^{\circ}C$ and $350^{\circ}C$ respectively in ethanol gas. And the response characteristics of the device showed the best results when lwt% Pd was added to SnOz especially in low concentration of ethanol gas.

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Catalytic Reactions of Ethanol and Acetaldehyde Over $TiO_2$-supported Gold Catalysts

  • Kim, Jeong-Jin;Kim, Yu-Gwon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.264-264
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    • 2012
  • As an environment-friendly alternative energy resource, ethanol may be used to obtain hydrogen, a clean energy source. Thus, studies on catalytic reactions involving ethanol have been studied to understand the underlying principles in the reaction mechanism using various oxide-supported catalysts. Among them, Au-based catalysts have shown a superior activity in producing hydrogen gas. In the present study, Au/$TiO_2$ catalysts were prepared by deposition-precipitation method to understand their catalytic activities toward ethanol and acetaldehyde with increasing gold loading, especially at the very low Au loading regime. A commercially available $TiO_2$ (Degussa P-25) was employed and the Au loading was varied to 0, 0.1, 0.5, and 1.0 wt% respectively. The catalysts showed characteristic x-ray diffraction (XRD) features at $2{\theta}=78.5^{\circ}$ that could be assigned to the presence of gold nanoparticles. Its reactivity measurements were performed under a constant flow of ethanol and acetaldehyde at a flow rate of ${\sim}0.6{\mu}mol/sec$ and the substrate temperature was slowly raised at a rate of 0.2 K/sec. We observed that the overall reactivity of the catalysts increased with increasing Au loading along with selectivity favoring dehydrogenation to product hydrogen gas. In addition, we disclosed various reaction channels involving competitive reaction paths such as dehydrogenation, dehydration, and condensation. In addition, subsequent reactions of acetaldehyde obtained from dehydrogenation of ethanol, were found to occur and produce butene, crotonaldehyde, furan, and benzene. Based on the results, we proposed overall reaction pathways of such reaction channels.

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Micro Gas Turbine Performance using Catalytic Cracked Ethanol as Fuel (촉매 분해 에탄올을 연료로 사용하는 마이크로 가스터빈의 성능)

  • Choi, Songyi;Koo, Jaye;Yoon, Youngbin
    • Journal of Aerospace System Engineering
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    • v.11 no.2
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    • pp.9-15
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    • 2017
  • In order to verify the possiblity of improving the combustion performance of ethanol using zeolite catalyst and the characteristics of nitrogen oxides and carbon monoxide emission, micro gas turbine experiments were performed using catalytic reaction products, ethanol and kerosene as fuels and the results were compared. The thrust of the catalytic reaction product was lower than that of kerosene, but it was improved by 5% on average compared with the use of ethanol. Nitrogen oxides and carbon monoxide emissions of the catalytic reaction products were measured to be very low overall compared to kerosene. As a result, when the ethanol was reformed using the zeolite catalyst, the engine performance could be improved while maintaining the environment friendliness of the ethanol.

The Effect of the Excess Air Factor on the Emission Characteristics of the SI Engine Fueled with Gasoline-Ethanol and Hydrogen Enriched Gas (공기과잉률의 변화가 에탄올 및 수소농후가스 혼합연료 기관의 배기 특성에 미치는 영향)

  • Park, Cheol-Woong;Choi, Young;Oh, Seung-Mook;Kim, Chang-Gi;Lim, Gi-Hun
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.33 no.5
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    • pp.334-342
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    • 2009
  • Trends in the automotive market require the application of new engine technologies, which allows for the use of different types of fuel. Since ethanol is a renewable source of energy and has lower $CO_2$ emissions than gasoline, ethanol produced from biomass is expected to be used more frequently as an alternative fuel. It is recognized that for spark ignition (SI) engines, ethanol has the advantages of high octane number and high combustion speed. Due to the disadvantages of ethanol, it may cause extra wear and corrosion of electric fuel pumps. On-board hydrogen production out of ethanol is an alternative plan. This paper investigates the influence of ethanol fuel on SI engine performance, thermal efficiency and emissions. The combustion characteristics with hydrogen-enriched gaseous fuel from ethanol are also examined. As a result, thermal efficiency increase compared to gasoline. Also, reductions in $CO_2$, NOx, and THC combustion products for ethanol vs. gasoline are described.