• Title/Summary/Keyword: bioethanol science information

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Global Trends of Bioethanol Science Information (바이오에탄올 학술정보 분석)

  • Kil, Sang-Cheol;Kim, Sang-Woo;Oh, Mihn-Soo
    • Economic and Environmental Geology
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    • v.45 no.5
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    • pp.589-597
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    • 2012
  • Recently, an understanding of new sources of liquid hydrocarbons such as bioethanol is economically very important. Bioethanol is actually ethyl alcohol or also referred to as ethanol, identical to drinking alcohol by its composition. There are mainly two ways of producing ethanol, namely by synthesis of hydrocarbons and from biomass. Only the second approach deserves the terminology 'bioethanol'. The present dissertation is also designed with purpose of developing the energy-saving process for the separation of bioethanol. The world population is expected to grow past 8 billion by 2030 which are almost 60% in Asia Pacific. History has shown that energy use rises much faster than population expands. World wide demand for energy will increase significantly during the next 15 years driven by population growth and the transition of emerging markets into the global economy. In developing nations, a smaller increment in GDP per capita yields a higher increment in energy consumption compared to developed countries. In this study, we analised total 2,454 dissertations for the bioethanol during the 2001~2012 periods by the programs of 'web of science' and 'recently developped program by Korea Institute of Science Technology Information'.

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.

Plant Biomass Degradation and Bioethanol Production Using Hyperthermophilic Bacterium Caldicellulosiruptor bescii (고온성 세균 Caldicellulosiruptor bescii를 이용한 식물성 바이오매스의 분해와 바이오에탄올의 생산)

  • Lee, Han-Seung
    • Journal of Life Science
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    • v.25 no.12
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    • pp.1450-1457
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    • 2015
  • To overcome the depletion of fossil fuels and environmental problems in future, the research and production of biofuels have attracted attention largely. Thermophilic microorganisms produce effective and robust enzymes which can hydrolyze plant biomass and survive under harsh bioprocessing conditions. Caldicellulosiruptor bescii, which can degrade unpretreated plants and grow on them, is the one of the best candidates for consolidated bioprocessing (CBP). C. bescii can hydrolyze pectin efficiently as well as the major plant cell wall components, cellulose and hemicelluloses. Many glycosyl hydrolases and carbohydrate lyases with multidomain structure play an important role in plant biomass decomposition. Recently genetic tools for metabolic engineering of C. bescii have developed and bioethanol production from unpretreated biomass is achieved in C. bescii. Here, we review the recent studies for biomass degradation by C. bescii and bioethanol production in C. bescii in order to provide information about metabolic engineering of themophilic bacteria and biofuel development.

Overview of the Biomass as a Renewable Energy (신 재생에너지로서 바이오매스에 대한 현황 고찰)

  • Lee, Jin-Hui;Kim, Jae-Kon;Yim, Eui-Soon;Chung, Choong-Sub;Rheem, Hwa-Jun
    • Journal of the Korean Applied Science and Technology
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    • v.29 no.4
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    • pp.638-652
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    • 2012
  • This study is written by the methods of investigation of references be attached, and includes the background introduced, manufacturing processes, original properties, standards, amounts produced, market situation, ways of applied currently, and policies as a fuel manufactured by biomass on individual countries through the scope of worldwide, especially focused on bioethanol, biodiesel and biogas. It is prepared over multiple angles for the references, who want to getting information and searching desired ways in the future regarding to bioenergy. It is concluded that bioenergy is one of the useful renewable energy, 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.

Recent Progress in Strain Development of Zymomonas mobilis for Lignocellulosic Ethanol Production (Zymomonas mobilis를 이용한 목질계 에탄올 생산을 위한 균주 개선에 관한 연구 동향)

  • Jeon, Young Jae
    • Journal of Life Science
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    • v.29 no.1
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    • pp.135-145
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    • 2019
  • Zymomonas mobilis has been recognized as a potential industrial ethanologen for many decades due to its outstanding fermentation characteristics, including high ethanol tolerance, fast sugar uptake rate, and high theoretical ethanol yield. With the emergence of the postgenomic era and the recent announcement of DuPont's world largest cellulosic ethanol production process, research on this bacterium has become even more important to harness successful application not only for use in the bioethanol process but also in other biochemical processes, which can be included in bio-refinery. As an important industrial microorganism, Z. mobilis will likely be exposed to various stressful environments, such as toxic chemicals, including the end-product ethanol and fermentative inhibitory compounds (e.g., furan derivatives, organic acids, and lignin derivatives in pretreatment steps), as well as physical stresses, such as high temperature during large-scale ethanol fermentation. This review focuses on recent information related to the industrial robustness of this bacterium and strain development to improve the ethanol yield and productivity in the lignocellulosic ethanol process. Although several excellent review articles on the strain development of this bacterium have been published, this review aims to fill gaps in the literature by highlighting recent advances in physiological understanding of this bacterium that may aid strain developments and improve the ethanol productivity for lignocellulosic biomass.