• Title/Summary/Keyword: 바이오부탄올

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Industrial Biotechnology: Bioconversion of Biomass to Fuel, Chemical Feedstock and Polymers (산업 BT: 생물 자원의 생물 변환에 의한 연료, 화학원료 및 고분자의 생산)

  • Lee, Sun-Gu;Park, Sunghoon
    • Korean Chemical Engineering Research
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    • v.44 no.1
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    • pp.23-34
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    • 2006
  • The production of various commodity chemicals including fine chemicals, pharmaceuticals, bulk chemicals, plastics, and fuels is based on fossil resources such as petroleum. However, the limited reserves and ever-increasing demand of petroleum lead to the rapid elevation of its price. In addition, the traditional chemical processes using petroleum as a raw material have been imposing a serious environmental burden to our planet including global warming. These problems can be alleviated substantially by employing biological raw materials and bioconversion processes. Industrial biotechnology is expected to significantly complement or replace the current petroleum-based industry and to play an important role in bringing about so-called 'bio-based society'.

Study on Emission Characteristics Depending on Mixing Fuels of Bio-Alcohol (바이오알코올 혼합연료에 따른 배출 특성 연구)

  • KIM, SHIN;KIM, JAE-KON;LEE, MIN-HO;HWANG, IN-HA;LEE, JUNG-MIN
    • Transactions of the Korean hydrogen and new energy society
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    • v.29 no.6
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    • pp.654-660
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    • 2018
  • The dependence on global fossil fuels has been gradually reducing all over the world. Some countries which recognized the important of environmental values were joining to carry out international GHG goals. Our country has also participated with high targets (37% reduction compared to BAU 2030 years). So we need to supply materials of lower GHG value such as a bio-diesel. Bio-alcohol is one of the similar bio-fuels that can be reducing GHG. A lot of countries had tried to commercialize through various R&D for bio-alcohol. In this study, we analyzed the fuel characteristics of bio-alcohol fuel produced by domestic technology. And we evaluated a possibility to use as vehicle fuel through mixing of bio-alcohol and gasoline. The mixed fuels were satisfied with 2.3 wt% of oxygen content that is standard of the petroleum and petroleum alternative fuel business Act. We tried to evaluate a emission characteristic of vehicle by mixed fuel. In accordance with the results we tried to find a correlation between fuel and emission.

Bioconversion of Ginsenosides by Bifidobacterium CBT BG7, BR3 and BL3 (비피도박테리움 CBT BG7, BR3, BL3의 진세노사이드 전환능)

  • Jiwon Choi;Chang Kwon;Jong Won Kim;Myung Jun Chung;Jong Hyun Yoon;Sanghyun Lim
    • Microbiology and Biotechnology Letters
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    • v.50 no.3
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    • pp.395-403
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    • 2022
  • In this study, we identified that the fermentation of Korean indigenous probiotics and red ginseng produced ginsenoside compound K (CK) from major ginsenosides. Based on whole genome sequencing of 19 probiotics species, β-glucosidase, α-arabinofuranosidase, β-xylosidase, and α-rhamnosidase related to bioconversion of ginsenosides are identified in the genome of 19 species, 3 species, 6 species, and 8 species, respectively. Among the 19 probiotics species, Bifidobacterium longum CBT BG7 converted from ginsenoside Rb1 to CK, and both B. breve CBT BR3 and B. lactis CBT BL3 converted ginsenoside Rb1 to Rd. The final concentration and yield of ginsenoside F2 and CK were higher in the fermentation with the nondisrupted cells than with disrupted cells. The combination of both CBT BG7 and BL3, and CBT BG7 and BR3 showed higher amounts of F2 than CBT BG7 only. CBT BG7 with adding α-amylase increased the amounts of F2. In this study, we identified that the fermentation of both Korean indigenous probiotic bacteria CBT BG7, BR3 and BL3, and red gingseng is able to produce CK, a bioactive compound that promotes health benefits.

Characteristics of Enzymatic Hydrolysis of Sodium Hydroxide pretreated Suwon Poplar (NaOH 전처리된 현사시나무의 효소가수분해 특성)

  • 박영기;오정수
    • Journal of Korea Foresty Energy
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    • v.20 no.2
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    • pp.20-27
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    • 2001
  • An effective method for production of glucose was developed using enzymatic hydrolysis of Suwon poplar by the cellulase. Enzymatic hydrolysis of wood is the reaction to produce glucose from wood using enzyme which derives from microorganism. Glucose can be transferred easily to ethanol by fermentation. Ethanol is the starting material for producing acetone, butanol, citric acid and lactic acid. The mechanism of the enzymatic hydrolysis of cellulose are reasonably explained in terms of the sequential action of three different types of enzymes, endo-cellulase, ex-cellulase, and $\beta$ -glucosidase. The goal of this work was to investigate the cellulose hydrolysis pretreated polar with various concentration NaOH, the crystallinity of cellulose, lignin contents and the degree of hydrolysis.

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Effects of DME Additives on Combustion Characteristics and Nano-particle Distributions in a Single Cylinder Compression Ignition Engine (DME 연료에 첨가제를 혼합하였을 때의 연소 특성 및 배출가스 특성에 관한 연구)

  • Kwon, Seok-Joo;Cha, June-Pyo;Kang, Min-Gu;Lee, Chang-Sik;Park, Sung-Wook;Lim, Young-Kwan
    • Transactions of the Korean Society of Automotive Engineers
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    • v.20 no.5
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    • pp.19-25
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    • 2012
  • This study describes effects of DME additives on combustion and exhaust emissions characteristics including nano-particle in a single cylinder compression ignition engine. Considered additives include bio-diesel, n-butanol, and MTBE for increasing kinematic viscosity. Among three additives, n-butanol showed the greatest kinematic viscosity. In addition MTBE showed the highest vapor pressure. In the present study mixing ratios of additives were kept constant at 1 and 10% by volume. Experiments were performed at 1200rpm engine speed and nano-particles were measured by SMPS (Scanning mobility particle sizer) devices. Results of combustion characteristics showed that considered additives had little effects on combustion pressure. However, patterns of heat release rate were dependent on properties of additives. Nano-particles of MTBE were the lowest among considered additives.

Enhancement of Anti-inflammatory Activity of Lactobacillus plantarum Fermented by Achyranthes japonica on Extraction Solvents (추출 용매에 따른 Lactobacillus plantarum 발효 우슬의 항염증 효과 증진)

  • Jo, Eun Sol;Woo, Young Min;Kim, Ok Ju;Jo, Min Young;Ahn, Mee Young;Lee, Jae-Hwa;Ha, Jong-Myung;Kim, Andre
    • Applied Chemistry for Engineering
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    • v.30 no.2
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    • pp.145-150
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    • 2019
  • In this study, we used extracts obtained from five different solvents (water, ethanol, hexane, ethyl acetate, butanol) of Achyranthes japonica (AJ) and also AJ fermented with Lactobacillus plantarum (LP) to confirm effects on the anti-inflammatory activity in RAW264.7 cells. Experiments of measuring nitric oxide (NO) and cytokine production were performed in lipopolysaccharide (LPS)-induced RAW264.7 cells, and the expression of both cyclooxygenase-2 (COX-2) and inducible nitric oxide synthase (iNOS) was observed by a western blot method. The cytotoxicity of RAW264.7 was confirmed by the cell counting kit (CCK) assay at a concentration of $100{\mu}g/mL$, which has no toxicity. As a result of the inhibition of NO production, the inhibition rate of AJ-LP extracted with ethanol samples was about 74% higher than that of using the control group. Interleukin-6 (IL-6), tumor necrosis factor-${\alpha}$ (TNF-${\alpha}$), and Interleukin-$1{\beta}$ (IL-$1{\beta}$), which are inflammatory cytokines, also showed an excellent efficacy with inhibition rates of about 57, 70, and 74%, respectively. Comparing to the results of COX-2 and iNOS expression in the AJ group, the inhibition rate of 20-hydroxyecdysone was the highest than others. On the other hand, the COX-2 expression level of AJ-LP group decreased about 16% compared to that of the control group, and the iNOS expression level was also decreased about 7%. These results suggest that the extract of AJ fermented from L. plantarum can be used as an anti-inflammatory natural material.

Biorefinery Based on Weeds and Agricultural Residues (잡초 및 농림부산물을 이용한 Biorefinery 기술개발)

  • Hwang, In-Taek;Hwang, Jin-Soo;Lim, Hee-Kyung;Park, No-Joong
    • Korean Journal of Weed Science
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    • v.30 no.4
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    • pp.340-360
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    • 2010
  • The depletion of fossil fuels, ecological problems associated with $CO_2$ emissions climate change, growing world population, and future energy supplies are forcing the development of alternative resources for energy (heat and electricity), transport fuels and chemicals: the replacement of fossil resources with $CO_2$ neutral biomass. Several options exist to cover energy supplies of the future, including solar, wind, and water power; however, chemical carbon source can get from biomass only. When used in combination with environmental friend production and processing technology, the use of biomass can be seen as a sustainable alternative to conventional chemical feedstocks. The biorefinery concept is analogous to today's petroleum refinery, which produce multiple fuels and chemical products from petroleum. A biorefinery is a facility that integrates biomass conversion processes and equipment to produce fuels, power, and value-added chemicals from biomass. Biorefinery is the co-production of a spectrum of bio-based products (food, feed, materials, and chemicals) and energy (fuels, power, and heat) from biomass [definition IEA Bioenergy Task 42]. By producing multiple products, a biorefinery takes advantage of the various components in biomass and their intermediates therefore maximizing the value derived from the biomass feedstocks. A biorefinery could, for example, produce one or several low-volume, but high-value, chemical or nutraceutical products and a low-value, but high-volume liquid transportation fuel such as biodiesel or bioethanol. Future biorefinery may play a major role in producing chemicals and materials as a bridge between agriculture and chemistry that are traditionally produced from petroleum. Industrial biotechnology is expected to significantly complement or replace the current petroleum-based industry and to play an important role.

Fermentation of rice bran and defatted rice bran for butanol production using Clostridium beijerinckii NCIMB 8052 (수송용 바이오 부탄올 생산을 위한 미강발효의 최적화)

  • Lee, Ji-Eun;Seo, Eun-Jong;Park, Ki-Moon;Jin, Young-Su
    • 한국신재생에너지학회:학술대회논문집
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    • 2008.05a
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    • pp.235-238
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    • 2008
  • We examined butanol fermentation by Clostridium beijerinckii NCIMB 8052 using various hydrolyzates obtained from rice bran which is one of the most abundant agricultural by-products in Korea and Japan. In order to increase the amount of fermentable sugars in the hydrolyzates of rice bran, various hydrolysis procedures were applied. Total eight different hydrolyzates were prepared using rice bran (RB) and defatted rice bran (DRB) with enzyme or acid treatment and both. Each hydrolyzate was evaluated in terms of total sugar concentration and butanol production after fermentation by C. beijerinckii NCIMB 8052. Acid treatment yielded more sugar than enzyme treatment and combined treatment with enzyme and acid yielded even more sugars as compared to single treatment with enzyme or acid. As a result, the highest sugar concentration (33 g/L) was observed from the hydrolyzate from DRB (100 g/L) with combined treatment using enzyme and acid. Prior to perform fermentation of the hydrolyzates, we examined the effect of P2 solution containing yeast extract, buffer, minerals, and vitamins on production of butanol during the fermentation. Fermentation of the hydrolyzates with or without additionof P2 was performed using C. beijerinckii NCIMB 8052 in a 1 L anaerobic bioreactor. Although the hydrolyzates RB were able to support growth and butanol production, addition of P2 solution into the hydrolyzates significantly improved cell growth and butanol production. Highest butanol production (12.24 g/L) was observed from the hydrolyzate of DRB with acid and enzyme treatment after supplementation of P2 solution.

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Extractives from Epimedium koreanum Nakai (삼지구엽초(Epimedium koreanum Nakai)의 추출성분)

  • Lee, Tae-Seong;Cho, Jae-Hyun;Hwang, Byung-Ho
    • Journal of Korea Foresty Energy
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    • v.24 no.2
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    • pp.16-23
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    • 2005
  • The air dried of Epimedium koreanum Nakai was extracted with MeOH and its extractives were concentrated with a vacuum evaporator. The extractives were fractionated with a series of n-hexane, chloroform (${CHCl}_3$), butanol (BuOH), ethyl acetate (EtOAc) and water on a separately funnel. Each fraction was freeze dried to give some dark brown powder. The EtOAc and BuOH soluble fractions were chromatographed on a Sephadex LH-20 column using a series of aqueous methanol and ethanol-n-hexane mixture as eluents. The isolated compounds were tested with a cellulose TLC developed with TBA and 6% acetic acid and then visualized on UV lamp or sprayed with vanillin-HCl-EtOH. The purified compounds were flavonoids and their glycosides, and organic acid as follows : (+)-catechin, icariin, hyperoside, Ikarisoside A and caffeic acid. The structures of each compounds were confirmed by $^1H-NMR,\;^{13}C-NMR$ and Mass spectra. Also, executed qualitative analysis as use GC/MS(Libraries search) about ${CHCl}_3$ soluble compounds of each part.

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Antifungal Activities of meOH Extracts from Three Korean Mistletose against Tyromyces palustris, Endothia nitschkei and Trichophyton rubrum (3종의 한국산 겨우살이 메탄올 추출물의 Tyromyces palustris, Endothia nitschkei 그리고 Trichophyton rubrum에 대한 항균활성)

  • 안원영;최원실;박미진
    • Journal of Korea Foresty Energy
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    • v.19 no.1
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    • pp.49-60
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    • 2000
  • The traditional Korea medical book already recorded various biological activities of the Korean mistletoes. The objective of this study was examine antifungal activities of MeOH extract from the Korean mistletoe through column chromatography on three fungi, such as Tyromyces palustris Endothia nitschkei and Trichophyton rubrum. No mistletoes had anti-fungal activity against T. palusties. Extracts of V. album var. coloratum showed the highest hyphal growth-inhibitory activity against E. nitschkei and leaf extract of this species had higher activity than twig extract. Further fractionation of most active fraction and following antifungal assay showed that its anti-fungal activity might be caused by synergism if its components. It was suggested that Viscum album var. coloratum shows significantly antifungal activities against E. nitschkei and T. rubrum. Further examination is needed to find out more exact active compounds.

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