• 제목/요약/키워드: Dark Fermentation

검색결과 74건 처리시간 0.029초

혐기성 수소발효를 결합한 생물학적 2단공정의 유기성폐자원 처리 및 바이오에너지 생산 (Two-stage Bioprocesses Combining Dark H2 Fermentation: Organic Waste Treatment and Bioenergy Production)

  • 이채영;유규선;한선기
    • 한국수소및신에너지학회논문집
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    • 제26권3호
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    • pp.247-259
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    • 2015
  • This study was performed to investigate the application of dark $H_2$ fermentation to two-stage bioprocesses for organic waste treatment and energy production. We reviewed information about the two-stage bioprocesses combining dark $H_2$ fermentation with $CH_4$ fermentation, photo $H_2$ fermentation, microbial fuel cells (MFCs), or microbial electrolysis cells (MECs) by using academic information databases and university libraries. Dark fermentative bacteria use organic waste as the sole source of electrons and energy, converting it into $H_2$. The reactions related to dark $H_2$ fermentation are rapid and do not require sunlight, making them useful for treating organic waste. However, the degradation is not complete and organic acids remain. Thus, dark $H_2$ fermentation should be combined with a post-treatment process, such as $CH_4$ fermentation, photo $H_2$ fermentation, MFCs, or MECs. So far, dark $H_2$ fermentation followed by $CH_4$ fermentation is a promising two-stage bioprocess among them. However, if the problems of manufacturing expenses, operational cost, scale-up, and practical applications will be solved, the two-stage bioprocesses combining dark $H_2$ fermentation with photo $H_2$ fermentation, MFCs, or MECs have also infinite potential in organic waste treatment and energy production. This paper demonstrated the feasibility of two-stage bioprocesses combining dark $H_2$ fermentation as a novel system for organic waste treatment and energy production.

Dark Hydrogen Production by a Green Microalga, Chlamydomonas reinhardtii UTEX 90

  • SIM SANG JUN;GONG GYEONG TAEK;KIM MI SUN;PARK TAl HYUN
    • Journal of Microbiology and Biotechnology
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    • 제15권6호
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    • pp.1159-1163
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    • 2005
  • The production of hydrogen by Chlamydomonas reinhardtii UTEX 90, a marine green alga, was performed under dark fermentation. The effects of initial nitrogen and phosphorus concentration on the cell growth and the production of hydrogen and organic substances were investigated. In the growth stage, the maximum dry cell weight (DCW) was 3 g/l when the initial ammonium concentration was 15 mM. In the dark fermentation, the maximum hydrogen production was $3.5\;{\mu}mol/\;mg$ DCW when the initial nitrogen concentration was 7.5 mM. The nitrogen concentration had a greater effect on organic compound and hydrogen production than the phosphorus concentration during the dark fermentation. An investigation of the duration of dark fermentation showed that, at least until three days, dark fermentation should be prolonged for maximum hydrogen production.

Photoproduction of Hydrogen from Acetate by Rhodopseudomonas: Effect of Culture Conditions and Sequential Dark/Light Fermentation

  • Oh, You-Kwan;Seol, Eun-Hee;Park, Sung-Hoon
    • 한국생물공학회:학술대회논문집
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    • 한국생물공학회 2003년도 생물공학의 동향(XIII)
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    • pp.422-427
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    • 2003
  • Rhodopseudomonas palustris P4 can produce $H_2$ either from CO by water-gas shift reaction or from various sugars by anaerobic fermentation. Fermentative $H_2$ production by P4 is fast, but its yield is relatively low due to the formation of various organic acids. In order to increase $H_2$ production yield from glucose, P4 was investigated for the photo-fermentation of acetate which is a major by-product of fermentative $H_2$ production. Experiments were performed in batch modes using both light-grown and dark-grown cells. When the dark-grown P4 was challenged with light and acetate, $H_2$ was produced with the consumption of acetate after a lag period of 25 h. $H_2$ production was inhibited when a nitrogen source, especially ammonium, is present. When the dark-fermentation broth containing acetate was adopted for photo-fermentation with light-grown cells, $H_2$ production and concomitant acetate consumption occurred without a lag period. The $H_2$ yield was estimated as 2.4 - 2.8 mol $H_2/mol$ acetate and the specific $H_2$ production rate was as 9.8 ml $H_2/g$ cell${\cdot}$h, The fact that a single strain can perform both dark- and light-fermentation gives a great advantage in process development Compared to a one-step dark-fermentation, the combined dark- and light-fermentation can increase the $H_2$ production yield on glucose by two-fold.

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Rhodopseudomonas palustris P4에 의한 이 단계(Two-stage) 생물학적 수소생산 (Two-Stage Biological Hydrogen Production by Rhodopseudomonas palustris P4)

  • 윤영수;인선경;백진숙;박성훈;오유관;김미선
    • 한국수소및신에너지학회논문집
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    • 제16권4호
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    • pp.315-323
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    • 2005
  • The integrated or the two-stage (dark anaerobic and photosynthetic) fermentation processes were compared for the hydrogen production using purple non-sulfur photosynthetic bacteria, Rhodopseudomonas palustris P4. Cell growth, pH changes and organic acids and bacteriochlorophyll contents were monitored during the processes. Culture broth of Rps. palustris P4 exhibited dark-red during the photosynthetic culture condition, while yellow under the anaerobic condition without light. Rps. palustris P4 grown at the photosynthetic condition evolved 0.38 and 1.33 ml $H_2$/mg-dcw during the dark and the light fermentation, respectively, which were totally 1.71 ml $H_2$/mg-dcw at the two-stage fermentation. The rate of hydrogen production using Rps. palustris P4 grown under the dark anaerobic condition was 2.76 ml $H_2$/mg-dcw which consisted of 0.46 and 2.30 ml $H_2$/mg-dcw from the dark and the photosynthetic fermentation processes, respectively. Rps. palustris P4 grown under dark anaerobic conditions produced $H_2$ 1.6 times higher than that of grown under the photosynthetic condition. However, total fermentation period of the former was 1.5 times slower than that of the latter, because the induced time of hydrogen production during the photosynthetic fermentation was 96 and 24 hours when the seed culture was the dark anaerobic and photosynthetic, respectively. The integrated fermentation process by Rps. palustris P4 produced 0.52 ml $H_2$/mg-dcw(1.01 mol $H_2$/mol glucose), which was 20% of the two-stage fermentation.

Effect of different harvesting times on the nutritive value and fermentation characteristics of late and early-maturing forage oats by rumen microbes

  • Zhang, Yan;Lee, Ye Hyun;Nogoy, Kim Margarette;Choi, Chang Weon;Kim, Do Hyung;Li, Xiang Zi;Choi, Seong Ho
    • 농업과학연구
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    • 제46권1호
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    • pp.125-135
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    • 2019
  • Late-maturing Dark Horse, and early-maturing High Speed oat varieties were seeded on March 3, 2016 and harvested on three periods: May 31, June 10, and June 20 coded as early, mid, and late-harvest, respectively. Dried and ground samples were subjected to chemical analysis to determine nutritional values such as crude protein (CP), neutral detergent fiber (NDF), acid detergent fiber (ADF), ether extract (EE), organic matter (OM), and total digestible nutrient (TDN). Effective degradability (ED) of nutrients and fermentation characteristics including volatile fatty acid (VFA) composition, pH, gas production, and ammonia-N concentration were evaluated through an in vitro digestion method. Varieties of oat hays showed significant difference in terms of nutritional value, ED, and fermentation characteristics. Dark Horse showed higher CP and OM, and lower EE contents than High Speed. Dark Horse also showed higher EDDM (dry matter), NDF, ADF, and OM than High Speed, and although High Speed showed higher pH and ammonia-N, it had lower gas and total VFA production than Dark Horse. However, in terms of harvest period, significant difference was only observed in Dark Horse where early-harvest increased the CP, and late-harvest increased the NDF and OM contents. In addition, early-harvest of Dark Horse increased the EDDM and EDNDF of the forage. Therefore, early-harvest of late-maturing Dark Horse would give better nutrient efficiency than High Speed. Allowing Dark Horse to advance in maturity would decrease its nutrient productivity and efficiency.

생물학적 수소생산 공정 (Biological Hydrogen Production Processes)

  • 신종환;박태현
    • Korean Chemical Engineering Research
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    • 제44권1호
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    • pp.16-22
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    • 2006
  • 생물학적 수소생산 공정은 다른 열화학적 공정이나 전기화학적 공정에 비하여 환경친화적이며 에너지를 덜 소모하는 공정이다. 생물학적 수소생산 공정은 크게 두 가지로 구별할 수 있는데, 광합성에 의한 수소생산과 혐기발효에 의한 수소생산이 그것이다. 광합성에 의한 수소생산 공정은 주로 물로부터 수소를 생산하고 동시에 공기 중의 이산화탄소도 저감하는 특징을 가지고 있으며, 혐기발효에 의한 수소생산 공정은 유기 탄소원을 섭취하는 박테리아에 의한 발효를 통해 이루어지는 공정이다. 본 논문에서는 생물학적 수소생산 공정에 대한 그간의 연구들에 대하여 살펴 보았다.

Effects of pH and Carbon Sources on Biohydrogen Production by Co-Culture of Clostridium butyricum and Rhodobacter sphaeroides

  • Lee, Jung-Yeol;Chen, Xue-Jiao;Lee, Eun-Jung;Min, Kyung-Sok
    • Journal of Microbiology and Biotechnology
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    • 제22권3호
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    • pp.400-406
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    • 2012
  • To improve the hydrogen yield from biological fermentation of organic wastewater, a co-culture system of dark- and photo-fermentation bacteria was investigated. In a pure-culture system of the dark-fermentation bacterium Clostridium butyricum, a pH of 6.25 was found to be optimal, resulting in a hydrogen production rate of 18.7 ml-$H_2/l/h$. On the other hand, the photosynthetic bacterium Rhodobacter sphaeroides could produce the most hydrogen at 1.81mol-$H_2/mol$-glucose at pH 7.0. The maximum specific growth rate of R. sphaeroides was determined to be 2.93 $h^{-1}$ when acetic acid was used as the carbon source, a result that was significantly higher than that obtained using either glucose or a mixture of volatile fatty acids (VFAs). Acetic acid best supported R. sphaeroides cell growth but not hydrogen production. In the co-culture system with glucose, hydrogen could be steadily produced without any lag phase. There were distinguishable inflection points in a plot of accumulated hydrogen over time, resulting from the dynamic production or consumption of VFAs by the interaction between the dark- and photo-fermentation bacteria. Lastly, the hydrogen production rate of a repeated fed-batch run was 15.9 ml-$H_2/l/h$, which was achievable in a sustainable manner.

미생물에 의한 수소생산: Dark Anaerobic Fermentation and Photo-biological Process (Microbial hydrogen production: Dark Anaerobic Fermentation and Photo-biological Process)

  • 김미선;백진숙
    • KSBB Journal
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    • 제20권6호
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    • pp.393-400
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    • 2005
  • 수소를 생산하는 미생물은 크게 광합성 세균(photosynthetic bacteria), 혐기성세균(non-photosynthetic anaerobic bacteria), 조류(algae) 등으로 구분되고, 이들의 수소 생성 기작, 사용가능기질 및 수소 발생량은 상당한 차이가 있다. 광합성세균은 Rhodospirillaceae, Chromatiaceae 및 Chlorobiaceae로 구분되며, 이는 각각 홍색비유황세균(purple non-sulfur bacteria), 홍색유황세균(purple sulfur bacteria), 녹색유황세균(green sulfur bacteria)으로 통칭된다. 혐기성 세균은 절대 또는 통성혐기세균중 일부가 수소생산에 관여하며, 조류는 녹조류(green algae)와 남조류(blue-green algae, cyanobacteria)가 알려져 있다. 생물학적 수소생산 기술은 (1) 녹조류(green algae)가 광합성 메카니즘에 의해 수소를 생산하는 직접 물 분해 수소생산(direct bio-photolysis) (2) 광합성 작용에 의해 물을 분해하여 산소를 발생하고, 동시에 공기 중 이산화탄소를 고정하여 고분자 저장물질로 균체 내에 저장한 후 혐기 발효 또는 광합성 발효에 의해 수소를 발생하는 간접 물 분해 수소생산(indirect bio-photolysis or two stage photolysis) (3) 빛이 존재하는 혐기상태 배양 조건에서 홍색 세균에 의한 광합성 발효(photo-fermentation) 또는 (4) 광이 존재하지 않는 조건에서 혐기 미생물에 의해 수소와 유기산을 내는 혐기 발효(dark anaerobic fermentation) (5) 균체 외(in virro) 수소 발생 (6) 일산화탄소 가스 전환 반응(microbial gas shift reaction)에 의한 수소 생산 기술로 구분할 수 있다. 물로부터 생물학적 기술에 의한 수소생산은 공기 중의 이산화탄소를 고정하고, 수소와 산소를 발생하는 원천기술로써 오래 전부터 미국, 유럽에서 태양에너지를 이용하는 광합성 미생물의 분리, 개선 및 반응기에 관한 연구가 축적되어 왔으며, 유기물 즉 바이오매스로부터 혐기 및 광합성 발효를 연속적으로 적용하는 기술은 비교적 최근에 일본을 비롯한 유기성 폐기물이 많은 국가에서 수소에너지 생산과 유기성 폐기물 처리라는 두 가지 목적에 부합하는 연구로써 활발히 진행되고 있다. 유기성 폐기물이나 폐수와 같은 수분함량이 높은 바이오매스는 대부분이 매립처리 되는 실정이지만 높은 수분 함량 때문에 매립 시 발생하는 침출수는 환경오염의 주범으로 가까운 장래에는 매립도 금지될 전망이다. 이와 같은 수소에너지 생산기술과 이용시스템 개발은 화석연료 사용을 최소화 할 수 있으며, 국내에서 다량 발생하는 유기성 폐기물을 이용한 에너지 생산으로 자원 강대국 입지에 설 수 있다. 미생물에 의한 수소생산 기술은 청정에너지 생산과 아울러, 동시에 산소 발생, 공기 중 이산화탄소 고정, 식품공장 폐수 및 음식쓰레기와 같은 유기성 폐기물 처리 등 환경에 이로운 방향으로 진행될 뿐만 아니라, 미생물 자체가 갖는 생물 산업성도 높아서 비타민류, 천연색소, 피부암 치료제등의 고부가가치 의약품 생산도 활성화할 수 있다.

전통 된장의 담금용기에 따른 숙성 중 품질변화 (Quality Changes of Traditional Doenjang Fermented in Different Vessels)

  • 김진숙;신동화;유선미
    • Applied Biological Chemistry
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    • 제44권4호
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    • pp.230-234
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    • 2001
  • 재래법으로 제조한 된장을 담금용기를 달리하여 각각 담가 숙성시키면서 숙성기간 중 담금용기에 따른 된장의 품질변화를 조사하였다. 사용된 담금용기는 오지항아리, 오지항아리와 유리덮개 그리고 플라스틱통이었다. 된장의 수분 함량은 숙성 중 감소하였는데 오지항아리와 유리덮개를 사용한 구의 수분 함량이 가장 크게 감소하였다. 수용성 질소 함량은 숙성 8개월에 $4.56{\sim}5.80%$로 가장 높았고 오지항아리와 유리덮개에 담근 된장이 최대 함량을 보였다. 아미노산성 질소 함량은 숙성 12개월까지 계속 증가하였고 숙성 12개월의 아미노산성 질소 함량은 오지 항아리에 담근 된장이 $1.25{\sim}1.27%$로 플라스틱 통에 담근 된장 보다 높았다. 플라스틱통에 숙성시킨 된장의 품질을 관능적으로 평가한 결과 숙성 4개월부터, 다른 용기를 사용하여 담근 된장에 비하여 유의적으로 낮게 나타났다.

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Phenolic Compounds Production, Enhancement and Its Antioxidant Activity of Blue Berry Powder with Bacillus subtilis Light Mediated Fermentation Compounds

  • Elumalai, Punniyakotti;Lim, Jeong-Muk;Mohan, Harshavardhan;Lee, Jeong-Ho;Oh, Byung-Taek
    • 한국자원식물학회:학술대회논문집
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    • 한국자원식물학회 2018년도 춘계학술발표회
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    • pp.66-66
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    • 2018
  • Light fermentation has been conducted under different light conditions such as normal dark light, white light, and light emitting diodes (LEDs) various color (blue, green, red, white on blueberry powder with fermenting bacteria Bacillus subtilis (B2). The bacteria B2 was isolated and identified by 16S rRNA sequencing method. RYRP biologically converted to secondary metabolites through light fermentation in the presence of Bacillus subtilis, the bacteria actively involved in bioconversion process. LEDs fermentation to enhance the production of phenolic content while comparing to normal dark and white light. Among the different color LEDs, blue LEDs mediated fermentation showed higher amount of total phenolic and flavonoid content. Then blue LEDs mediated fermented compound were characterized by FTIR and GC-MS, subsequently the compound was analyzed antioxidant activity tests and the antioxidant activity exhibited higher. This is the first study to demonstrate that B. subtilis-LEDs mediated fermentation is useful for facilitating phenolic compound production and enhancing antioxidant activity, which may have greater application fermentation fields.

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