• Title/Summary/Keyword: 옥탄가

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Solid Acid Catalyzed Formation of ETBE(Ethyl tert-Butyl Ether) as an Octane Enhancer for Gasoline (고체산 촉매에 의한 가솔린 옥탄가 향상제인 ETBE (Ethyl tert-Butyl Ether) 합성)

  • Park, Nam-Cook;Kim, Jae-Seung;Seo, Seong-Gyu;Oh, Young-Yenl
    • Applied Chemistry for Engineering
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    • v.4 no.1
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    • pp.162-170
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    • 1993
  • Vapor-phase ETBE(ethyl tert-butyl ether) synthesis from TBA(tert-butyl alcohol) and ethanol was carried over solid acid catalysts such as heteropoly acids and proton type zeolites. Heteropoly acids were more active than proton type zeolites and $H_4SiW_{12}O_{40}$ catalyst showed about the same activity as Amberlyst-15 ion exchange resin catalyst used as an industrial catalyst in ETBE synthesis. The catalytic activity of transition metal exchanged heteropoly acids was greatly enhanced, because new acid site was generated with hydrogen reduction. This effect of hydrogen reduction was related to the reduction characteristics of catalysts and the order of reducibility was $Ag^+$>$Cu^{2+}$>$Fe^{2+}$.

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Effect of fuel octane number on knock characteristics in a spark-ignition engine (연료의 옥탄가 변화에 따른 스파크 점화기관의 노킹특성의 변화)

  • 이홍철;전광민
    • Journal of the korean Society of Automotive Engineers
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    • v.14 no.5
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    • pp.61-68
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    • 1992
  • Knock phenomenon is an abnormal combustion originated from autoignition of unburned gas in the end-gas region during the later stage of combustion process and it accompanys a high pitched metallic noise. Engine Knock is accompanied with a vibration of engine cylinder and when it is severe, it can cause major engine demage. Engine Knock is characterized in terms of knock crank angle, knock pressure, pressure jump and knock intensity. In this study, a 4-cylinder spark ignition engine was used for experiment and eighty consecutive cycles were analyzed statistically. The purpose of this study is to characterize spark ignition engine knock as a function of ignition timing and fuel research octane number. The result of this study can be summerized as follows. Knock occurrence angle approached TDC as ignition timing is advanced. Pressure and knock intensity gradually increased as spark timing is advanced. Mean knock occurence angle gradually approached TDC as fuel research octane number is decreased for identical spark timing. Knock intensity increased linearly as RON is decreased.

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Simplified Reaction Scheme of Hydrocarbon Fuels and Its Application to Autoignition of Gasoline with Different Octane Numbers (탄화수소계 연료의 축소반응모델과 가솔린연료의 옥탄가 변화에 따른 자발화 지연시간)

  • 여진구
    • Transactions of the Korean Society of Automotive Engineers
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    • v.11 no.3
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    • pp.13-19
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    • 2003
  • Mathematically simplified reaction scheme that simulates autoignitions of the end gases in spark ignition engines has been studied computationally. The five equation model is described, to predict the essential features of hydrocarbon oxidation. This scheme has been calibrated against autoignition delay times measured in rapid compression machines. The rate constants, activation temperatures, Ta, Arrhenius preexponential constants, A, and heats of reaction for stoichiometric n-heptane/air, iso-octane/air, and their mixtures have all been optimised. The optimisation has been guided by Morley's correlation of the ratio of chain branching to linear termination rates with octane number. Comparisons between computed and experimental autoignition delay times have validated the Present simplified reaction scheme and the influences of octane number upon autoignition delay times have been computationally investigated. It has been found that both cool flame and high temperature direct reactions can have an effect on autoignition delay times.

The concentration of Fermented Ethanol by Pervaporation Pilot Test (투과증발법을 이용한 발효에탄올의 농축)

  • 안승호;장재화;유제강;이규현
    • Proceedings of the Membrane Society of Korea Conference
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    • 1995.10a
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    • pp.33-35
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    • 1995
  • 현재 국내에서 생산되는 에탄올은 원료나 연료용으로 사용되는 합성알콜과 주류의 원료로 사용되는 발효알콜이 대부분을 차지하고 있다. 그러나 휘발유 첨가제, 연료용 알콜의 수요가 늘어날 경우 발효공정을 이용한 에탄올 연료의 사용이 늘어날 전망이며 특히 기존의 휘발유 첨가제 중 옥탄가 향상을 위한 MTBE 대신 에탄올, ETBE의 사용이 환경적인 측면이나 경제적으로 유리하다. 연로나 첨가제로서 에탄올을 사용하기 위해서는 기존의 95%의 순도를 갖는 일반에탄ㅇ올 대신에 99.5wt%이상의 고순도 에탄올을 생산하여야 하며 에탄올 농축공정 중의 하나인 Pervaporation은 국내에서 1-2년 전부터 연구가 활발히 진행되고 있으나 현재 국내에서 진행되고 있는 Pervaporation Test는 대부분 합성알콜을 이용하여 수행되었다. 이 실험에서는 주정공장에서 제조한 주정과 조주정을 이용, 현장 Pilot Test를 통해 PV System의 성능 검증, 에탄올 내 Trace 물질파악 및 필요 막면적을 이용하여 합성알콜과의 Performance비교를 수행하였다.

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A Study on Performance and Exhaust Gas Prediction in dedicated CNG Engine (CNG 전소기관의 성능 및 배출가스 예측에 관한 연구)

  • 오용석;김경배;한영출
    • Transactions of the Korean Society of Automotive Engineers
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    • v.6 no.4
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    • pp.178-185
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    • 1998
  • To reduce the particulate matter and nitrogen oxides from diesel engine, many studies are proceeding and being accomplished practically. In this situation CNG engine has important meaning both as a clean fuel and an alternative energy. In order to present the direction and application of CNG, we simulated various operating conditions, that is, spark timing, compression ratio and fuel composition etc. Thus we try to understand how those affect performance and exhaust characteristics. The simulation program results found that the optimum combustion start angle was 21$^{\circ}$ at 1800rpm and fuel composition affects performance and emissions, also we could understand the formation of emission as crank angle is changed.

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The Characteristics Study of Vehicle Evaporative Emission and Performance according to the Bio-Fuel Application (바이오 연료 적용에 따른 차량 증발가스 및 성능특성 연구)

  • Noh, Kyeong-Ha;Lee, Min-Ho;Kim, Ki-Ho;Kim, Sin;Park, Cheon-Kyu
    • Journal of the Korean Applied Science and Technology
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    • v.34 no.4
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    • pp.874-882
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    • 2017
  • As the interest on the air-pollution is gradually rising up at home and abroad, automotiv e and fuel researchers have been working on the exhaust emission reduction from vehicles through a lot of approaches, which consist of new engine design, innovative after-treatment systems, using clean (eco-friendly alternative) fuels and fuel quality improvement. This research has brought forward three main issues : evaporative, performance, air pollution. In addition, researcher studied the environment problems of the bio-ethanol, bio-butanol, bio-ETBE (Ethyl Tertiary Butyl Ether), MTBE (Methyl Tert iary Butyl Ether) fuel contained in the fuel as octane number improver. The researchers have many dat a about the health effects of ingestion of octane number improver. However, the data support the con clusion that octane number improver is a potential human carcinogen at high doses. Based on the bio-fuel and octane number improver types (bio-ethanol, bio-butanol, bio-ETBE, MTBE), this paper dis cussed the influence of gasoline fuel properties on the evaporative emission characteristics. Also, this p aper assessed the acceleration and power performance of gasoline vehicle for the bio-fuel property. As a result of the experiment, it was found that all the test fuels meet the domestic exhaust gas standards, and as a result of measurement of the vapor pressure of the test fuels, the bio - ethanol : 15 kPa and the biobutanol : 1.6 kPa. thus when manufacturing E3 fuel, Increasing the biobutanol content reduces evaporation gas and vapor pressure. In addition, Similar accelerating and powering performance was shown for the type of biofuel and when bio-butanol and bio-ethanol were compared accelerated perf ormance was improved by about 3.9% and vehicle power by 0.8%.

A Study on the Ignition Characteristics of Gasoline due to Variation in Octane Number (옥탄가 변화에 따른 가솔린의 발화특성에 관한 연구)

  • Kim, Hyeong Seok;Kim, Won Kil;Choi, Yu Jung;Kim, Jung-Hun;Choi, Jae-Wook
    • Journal of the Korean Society of Safety
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    • v.33 no.2
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    • pp.45-51
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    • 2018
  • This study was conducted to assess the hazards of gasoline in relevance to the changes in octane numbers, and gasoline's spontaneous ignition temperature and instantaneous ignition temperature were measured. Spontaneous ignition temperature of regular gasoline was $301^{\circ}C$ for sample quantity of $100{\sim}125{\mu}{\ell}$. Spontaneous ignition temperature of middle gasoline was $380^{\circ}C$ for sample quantity of $125{\mu}{\ell}$ and that of premium gasoline was $400^{\circ}C$. As gasoline's octane numbers increased, their spontaneous ignition temperatures increased, and their instantaneous ignition temperature were almost identically $499^{\circ}C$ for sample quantity of $125{\mu}{\ell}$. In addition, activation energies of regular gasoline, middle gasoline, and premium gasoline were 10.48 Kcal/mol, 16.89 Kcal/mol, and 24.55 Kcal/mol respectively.

Characteristics of Heteropoly Acid Catalyst for the Synthesis of ETBE(Ethyl Tert-Butyl Ether) (ETBE(Ethyl Tert-Butyl Ether) 합성에 대한 헤테로폴리산 촉매의 특성)

  • Park, Nam-Cook;Shin, Jae-Soon;Seo, Seong-Gyu;Lim, Yeoung-Taek;Kim, Jae-Seung
    • Applied Chemistry for Engineering
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    • v.5 no.1
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    • pp.30-36
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    • 1994
  • Reaction characteristics and correlations between the acidic property and catalytic activity of heteropoly acid catalyst on ETBE synthesis as a gasoline octane enhancer were investigated. The amount of pyridine adsorbed on heteropoly acid catalyst and catalytic activity in the synthesis of ETBE showed a good correlation. But ammonia failed to show such a correlation because of the complex formation of ammonia adsorbed and transition metal ions. In the case of supported catalyst catalytic activity and product distribution were mainly affected by the adsorption characteristics of TBA or iso-butene.

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Quality property of bioethanol blends & counterplan of infrastructure (바이오에탄올 혼합가솔린 품질특성 및 유통인프라 대응)

  • Jung, Choong-Sub
    • New & Renewable Energy
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    • v.2 no.4 s.8
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    • pp.102-106
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    • 2006
  • 에탄올은 금속, 고무 수지를 부식시키고 열화시키기 때문에 FFV 등 알코올 대응차량이 아닌 경우 에탄올 허용도가 제한되고 있으며, 물과의 상호용해성과 흡습성으로 수분혼입에 의한 상분리가 발생하여 혼합가솔린의 유통에서의 취급에 어려움이 야기되고 있다. 또한, 에탄올은 가솔린과 혼합되면 공비현상으로 인하여 50% 유출온도가 크게 떨어지고 증기압이 7kPa 정도 상승을 초래하는 점도 간과하지 않을 수 없다. 따라서, 자동차용휘발유에 에탄올을 혼입하여 사용할 경우, 가솔린기재를 적절히 선택하여 적정품질을 유지하여야 하며 무엇보다도 에탄을 혼입농도에 따른 저장탱크와 주유기 등의 부품에의 영향과 저장시의 상분리 문제를 충분히 규명하여 유통인프라에서의 적절한 대응책이 마련되어져야 한다. 유통 인프라 대응을 위해서는 우선 생산단계에서 수분 혼입을 최소화하기 위하여 저유소의 출하지점에서 서브옥탄가솔린과 에탄올을 라인브랜딩에 의해 제조하는 방법이 가장 타당하며, 수송부문에서는 탱크로리 등의 공급라인인 파이프와 실링 재질 등에 대해서 면밀한 검토가 필요하다고 할 수 있다. 주유소에서의 대응은 에탄을 혼합연료와 직접 접촉하는 연료계 등 부품재질을 내부식성의 재질로 변환시켜야 하며, 수분혼입을 최소화하기 위한 이중탱크 설치, 지하탱크 환기구내의 대기벨브 설치 등이 필요하며, 기타, 품질 및 수분관리 대책 등도 마련되어야 할 것이다.

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The Measurement of the Explosion Limit and the Minimum Oxygen Concentration of Gasoline According to Variation in Octane Number (옥탄가 변화에 따른 가솔린의 폭발한계 및 최소산소농도 측정)

  • Kim, Won-Kil;Kim, Jung-Hun;Ryu, Jong-Woo;Choi, Jae-Wook
    • Korean Chemical Engineering Research
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    • v.55 no.5
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    • pp.618-622
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    • 2017
  • Gasoline is a widely used product as a source for energy in homes, the automotive industry, and for industrial power generation, and it is also a product with a high risk of fire and explosion. In this study, to examine the risk for explosion for gasoline, PG, MG and RG, which are categorized according to octane number, were used as test specimens to measure their explosion limit according changes in oxygen concentration. The explosion limit for 21% oxygen concentration in air were confirmed to be 1.5~10.9%, 1.4~8.1%, and 1.3~7.6%, respectively, and the MOC for each of the test sample were confirmed to be 10.9%. The explosion limit measured in the test performed in this study confirmed between a 1.2%~7.6% wider explosion limit for the currently accepted MSDS for gasoline, and therefore it is considered that the results of this study can provide significant reference for preventing fires and explosions for process used gasoline.