• Title/Summary/Keyword: 바이오연료

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Degradation Properties and Production of Fuels from Hemicellulose by Acetone-Solvolysis (아세톤 용매분해법에 의한 헤미셀룰로오스의 분해특성 및 연료물질의 생성)

  • Lee, Jong-Jib
    • Transactions of the Korean hydrogen and new energy society
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    • v.19 no.1
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    • pp.56-63
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    • 2008
  • In this study, thermochemical degradation of hemicellulose by Acetone-Solvolysis, the effects of reaction temperature, conversion yield, degradation properties and degradation products were investigated. Experiments were performed in a tube reactor by varying reaction temperature from $200{\circ}C$ to $400{\circ}C$ at 40 min of reaction time. The liquid products from pyrolysis-liquefaction of hemicellulose contained various kinds of ketones. ketones, as 4-methyl-3-penten-2-one, 3-methylene-2-pentanone, 22,6-dimethyl-2, 5-heptadien-4-one, 4-methyl-2-pentanone, 5-methyl-2-hexanone, 3,5,5-trimethyl-2-cyclohexen-1-one, and bezenes. as 1,4-dimethylbenzene, 1-methyl-2-(1-methylethyl)-benzene, 1,4-dimethyl-2-(2-methylpropyl)benzene, 4-secbutyl-ethyl benzene, could be used as high-octane-value fuels and fuel additives. Combustion heating value of liquid products from thermochemical conversion processes of hemicellulose was in the range of $6,680{\sim}7,170cal/g$. After 40min of reaction at $400{\circ}C$ in Acetone-Solvolysis of hemicellulose, the energy yield and mass yield was as high as 72.2% and 41.2g oil/100g raw material, respectively.

Degradation Properties and Production of Fuels from Cellulose - Solvolysis - (셀룰로오스의 분해특성 및 연료물질 생성[II] - 용해분해 반응 -)

  • Lee, Jong-Jib;Lee, Byung-Hak
    • Transactions of the Korean hydrogen and new energy society
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    • v.16 no.2
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    • pp.159-169
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    • 2005
  • Cellulose, consisted of 45 wt% in wood, is usable as fuels and heavy oil additives if depolymerized to monomer unit, because the chemical structures are similar to high octane materials found in gasoline. In this study, thermochemical degradation by solvolysis reaction of cellulose such as the effect of reaction temperature, reaction time and type of solvent on conversion yield and degradation products were investigated. It was found that the effectiveness of the solvent on the sovolysis reaction was as follows; acetone>n-butanol>tetralin. When acetone was used as a solvent, the highest cellulose conversion was observed to be 91.8% at 500$^{\circ}C$, 40min. Combustion heating value of liquid products from thermochemical conversion processes was in the range of 7,330${\sim}$7,410cal/g. The energy yield and mass yield in acetone-solvolysis of cellulose was as high as 66.8% and 37.0 g oil/100g raw material after 40min of reaction at 400$^{\circ}C$. Various aliphatic and aromatic compounds were detected in the cellulose solvolysis products. The major components of the solvolysis products, that could be used as fuel, were mesityl oxide, mesitylene, isophorone.

Degradation Properties and Production of Fuels of Cellulose - Pyrolysis-Liquefaction - (셀룰로오스의 분해특성 및 연료물질 생성 (I) -열분해·액화반응-)

  • Lee, Jong-Jip;Lee, Byeong-Hak
    • Transactions of the Korean hydrogen and new energy society
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    • v.15 no.4
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    • pp.333-340
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    • 2004
  • In this study, thermochemical degradation by pyrolysis-liquefaction of cellulose, the effects of reaction time, reaction temperature, conversion yield, degradation properties and degradation products were investigated . Experiments were performed in a tube reactor by varying reaction time from 20 to 80 min at $200{\sim}500^\circ{C}$. Combustion heating value of liquid products from thermochemical conversion processes of cellulose was in the range of 6,920~6,960cal/g. After 40min of reaction at $400^\circ{C}$ in pyrolysis-liquefaction of cellulose, the energy yield and mass yield was as high as 54.3% and 34.0g oil/100g raw material, respectively. The liquid products from pyrolysis-liquefaction of cellulose contained various kinds of ketones, phenols and furans. ketones and furans could be used as high-octane-value fuels and fuel additives. However, phenols are not valuable as fuels.

Metabolic engineering of the genus Clostridium for butanol production (Clostridium 속 미생물 대사공학을 통한 butanol 생산)

  • Woo, Ji Eun;Kim, Minji;Noh, Hyeon Ji;Hwang, NuRi;Kim, Jin-Hyo;Lee, Sang Yup;Jang, Yu-Sin
    • Korean Journal of Microbiology
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    • v.52 no.4
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    • pp.391-397
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    • 2016
  • Clostridium is a genus of Gram-positive, rod shape, spore-forming obligate anaerobe. Recently, Clostridium has been attracted as a host for bio-based chemical production, due to its diversity of substrate utilization and the production ability for metabolites which can be used as a building block for chemical production. Especially, butanol produced from Clostridium has been considered as an alternative fuel. As a transportation fuel, butanol has a higher energy density and lower hygroscopicity compared to ethanol, the first generation biofuel. Recently, metabolic engineering of Clostridium has been massively conducted for butanol production. In this study, the metabolic engineering strategy of Clostridium for butanol production has been reviewed with a brief perspective.

Cellular Responses to Alcohol in Escherichia coli, Clostridium acetobutylicum, and Saccharomyces cerevisiae (알코올에 대한 Escherichia coli, Clostridium acetobutylicum, Saccharomyces cerevisiae의 반응)

  • Park, Ju-Yong;Hong, Chun-Sang;Han, Ji-Hye;Kang, Hyun-Woo;Chung, Bong-Woo;Choi, Gi-Wook;Min, Ji-Ho
    • Korean Chemical Engineering Research
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    • v.49 no.1
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    • pp.105-108
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    • 2011
  • The increased concern for the security of the oil supply and the negative impact of fossil fuels on the environment, particularly greenhouse gas emissions, has put pressure on society to find renewable fuel alternatives. Compared to the traditional biofuel, ethanol, higher alcohols offer advantage as gasoline substitutes because of their higher energy density and lower hygroscopicity. For this reason, microbial fermentation is known as potential producers for sustainable energy carriers. In this study, bacterial responses including cellular and molecular toxicity were studied in three different microorganisms, such as Escherichia coli, Clostridium acetobutylicum, and Saccharomyces cerevisiae. In this study, it was analyzed specific stress responses caused by ethanol and buthanol using four different stress responsive genes, i.e. fabA, grpE, katG and recA. The expression levels of these genes were quantified by semi-quantitative reverse transcription-PCR. It was found that four genes have shown different responsive patterns when E. coli cultures were under stressful conditions caused by ethanol and buthanol, respectively. Therefore, in this study, the stress responsive effects caused by these alcohols and the extent of each stress response can be analyzed using the expression levels and patterns of different stress responsive genes.

A Study on Characteristics of Wood Pellet Gasification in Two Stage Gasifier (Two Stage Gasifier에서의 우드펠릿 가스화 특성 연구)

  • Lee, Moon-Won;Choi, Sun-Yong;Kim, Lae-Hyun
    • Journal of Energy Engineering
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    • v.19 no.4
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    • pp.240-245
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    • 2010
  • In this study, characteristics of wood pellet gasification was studied using a Two Stage Gasifier which is consisted of pyrolysis reactor and ultra high temperature reformer. The average yields of $H_2$, $CH_4$, CO, $CO_2$ were 16.7, 11.3, 37.2, 26.6 L/mim, conversion rate from biomass to gas was 65% in pyrolysis reactor and gas yields in reformer were 55.4, 0.8, 120.8, 56.8 L/mim, respectively. The hydrogen flow rate from reformer is obtained 360.1 L/hr. The most of $CH_4$ was decomposed from 12.3 to 0.3 vol.% while $H_2$ is from 18.2 to 23.7 vol.% in reformer by methane dry reforming, Boudouard reaction, oxidation and/or steam reforming. The amount of $H_2O$ generated by hydration reaction from reformer was 1111.8 g, its accelerated conversion of $CH_4$ to other products. The conversion rate from $CH_4$ to other Compounds was 97.2%. Cold gas efficiency was 53.2%.

Comparison of Ethanol Fermentation by Saccharomyces cerevisiae CHY1077 and Zymomonas mobilis CHZ2501 from Starch Feedstocks (전분 기질에 대한 Saccharomyces cerevisiae CHY1077과 Zymomonas mobilis CHZ2501의 에탄올 발효 비교)

  • Choi, Giwook;Kang, Hyunwoo;Kim, Youngran;Chung, Bongwoo
    • Korean Chemical Engineering Research
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    • v.46 no.5
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    • pp.977-982
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    • 2008
  • The production of ethanol by microbial fermentation as an alternative energy source has been of interest because of increasing oil price. Saccharomyces cerevisiae and Zymomonas mobilis are two of the most widely used ethanol producers. In this study, characteristics of ethanol fermentation by Saccharomyces cerevisiae CHY1077 and Zymomonas mobilis CHZ2501 was compared. Brown rice, naked barley, and cassava were selected as representatives of the starch-based raw materials commercially available for ethanol production. The volumetric ethanol productivities by Saccharomyces cerevisiae from brown rice, naked barley and cassava were $0.68g/l{\cdot}h$, $1.03g/l{\cdot}h$ and $1.28g/l{\cdot}h$ respectively. But for the Zymomonas mobilis, $2.19g/l{\cdot}h$(brown rice), $2.60g/l{\cdot}h$(naked barley) and $3.12g/l{\cdot}h$(cassava) were obtained. Zymomonas mobilis was more efficient strain for ethanol production than S. cerevisiae.

Development of Pichia stipitis Co-fermenting Cellobiose and Xylose Through Adaptive Evolution (적응진화를 활용한 cellobiose와 xylose 동시발효 Pichia stipitis의 개발)

  • Kim, Dae-Hwan;Lee, Won-Heong
    • Microbiology and Biotechnology Letters
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    • v.47 no.4
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    • pp.565-573
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    • 2019
  • Production of biofuels and value-added materials from cellulosic biomass requires the development of a microbial strain capable of efficiently fermenting mixed sugars. In this study, the natural xylose fermenting yeast, Pichia stipitis, was evolved to simultaneously ferment cellobiose and xylose. Serial subcultures of wild-type P. stipitis in 20 g/l cellobiose were performed to increase the rate of cellobiose consumption. A total of ten rounds of the serial subculture led to the isolation of an evolved strain fermenting cellobiose significantly faster than the parental strain. The evolved strain displayed enhanced ethanol yield from 0 to 0.4 g ethanol/g cellobiose. The evolved P. stipitis simultaneously fermented cellobiose and xylose in batch fermentation. The genetic information of our evolved P. stipitis would be valuable in the development of a microbial host for the production of biofuels and biomaterials from cellulosic biomass.

Overview of the Bioethanol and Gasohol as a Fuel for Vehicle (차량용 연료로 사용되는 바이오에탄올과 가소홀)

  • Lee, Jin-Hui;Rheem, Hwa-Jun
    • Journal of the Korean Applied Science and Technology
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    • v.29 no.3
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    • pp.516-530
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    • 2012
  • Gasohol which is the mixture of gasoline and ethanol, is used to gasoline vehicles worldwide currently. This study is performed by the methods of the review of references, and includes the background introduced, manufacturing processes, amounts produced, original properties, specifications, ways of applied currently, regulations and policies as a fuel for gasoline vehicles on individual countries through the scope of worldwide, especially focused on bioethanol and gasoline. By the reason above, it is prepared by focused on multiple angles for the person who want to getting information and searching desired ways in the future regarding to bioethanol and gasohol. It is concluded that gasohol is one of the useful renewable energies, and must to take a step forward by the approaching of multiple points, and finally showed some directions by the way of comparing of the situations and references nowaday.

A Study on the Development of the Charcoal with Low Carbon Monoxide Emission using Biomass Combustion Improver (바이오매스 조연제를 이용한 CO저감형 착화탄 개발에 대한 연구)

  • Kim, Seunghee;Lee, Yeonkyung;Lee, Junseok;Jeon, Chunghwan
    • Journal of Energy Engineering
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    • v.25 no.3
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    • pp.9-17
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    • 2016
  • In this study, a method for CO reduction using char-coal combustions was developed with lignin and glycerin as combustion improvers. The relationship between CO emission and the combustion improvers was confirmed by measuring the CO concentration. The experiment to determine the combustion characteristics was conducted using glycerin, which shows high combustibility at low temperatures, impregnated with lignin, which has a specific surface area. The combustibility, volatility, and CO concentration were measured using thermo-gravimetric analysis(TGA), and gas chromatography-mass spectrometry(GC-MS). This study presents the optimal CO reduction ratio, which occurred when the combustible material contained a 20% blend of combustion improvers. This resulted in a 20-30% CO reduction rate compared to that achieved with normal char-coal.