• Title/Summary/Keyword: three-stage methane fermentation system

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반혐기성 가수분해/산 발효조에서의 음식폐기물 발효 균주 탐색

  • Kim, Jung-Gon;Kim, Si-Uk
    • 한국생물공학회:학술대회논문집
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    • 2002.04a
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    • pp.427-430
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    • 2002
  • Pilot scale(2.5 ton) three-stage methane fermentation process was developed for the rapid production of methane from food wastes in our laboratory. Eleven strains responsible for the primary semianaerobic hydrolysis/acidogenic fermentation system were isolated and characterized. Among them, the number of gram positive bacteria was eight and that of gram negative bacteria was three. They were rod and showed positive reaction to catalase. The strain K5 was found to have the highest enzyme activities of amylase and protease.

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Isolation and Characterization of An Alcohol Fermentation Strain from Anaerobic Acid Fermentor to Treat Food Wastes (음식폐기물 처리용 혐기성 산 발효조로부터 알코올발효 균주의 분리 및 특성)

  • Kim, Jung-Kon;Han, Gui-Hwan;Yoo, Jin-Cheol;Seong, Chi-Nam;Kim, Seong-Jun;Kim, Si-Wouk
    • KSBB Journal
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    • v.21 no.6 s.101
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    • pp.451-455
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    • 2006
  • An efficient pilot scale (10 ton) three-stage methane fermentation system to digest food waste has been developed in this laboratory. This system consisted of three stages: semianaerobic hydrolysis, anaerobic acidogenesis and strictly anaerobic methanogenesis. From the secondary acidogenesis reactor, a novel strain KA4 responsible for alcohol fermentation was isolated and characterized. The cell was oval and its dimension was $5.5-6.5{\times}3.5-4.5\;{\mu}m$. This strain was identified as Saccharomyces cerevisiae KA4 by 26S rDNA D1/D2 rDNA sequence. Optimal culture temperature was $30-35^{\circ}C$. Cells were tolerant to 5% (v/v) ethanol concentration, however, were inhibited significantly by higher ethanol concentration up to 7%. The strain could grow well up to 50% (w/v) initial glucose concentration in the YM liquid medium, however, optimal concentration for ethanol fermentation was 10%. It could produce ethanol in a broad initial pH range from 4 to 10, and optimal pH was 6. In this condition, the strain converted 10% glucose to 7.4% ethanol during 24 hr, and ethanol yield was estimated to be 2.87 moi EtOH/mol glucose.

조류를 이용한 유기성 폐수 처리 시스템과 물벼룩 성장 조건

  • Jo, Jae-Hun;Kim, Jun-Hwi;Lee, Jeong-Seop;Yun, Seong-Myeong;Kim, Si-Uk
    • 한국생물공학회:학술대회논문집
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    • 2001.11a
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    • pp.568-571
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    • 2001
  • Food wastewater eluted from the three-stage methane fermentation system developed in this lab showed high concentrations of TCOD, BOD, T-N and T-P. Because the effluent of biological filter chamber (BFC) still had high concentration of nitrogen and organic material, the effluent was treated with algal periphyton system using algae. The removal rates of COD, T-N and T-P wer 96, 98 and 91%, respectively, in this system. The grown algae could digested byy waterfleas using the ecological food chain system. Food wastewater is better than algal culture medium for growth of waterflea, Moima Macrocopa. During 12days, the individual of waterflea increased to 180 in the food wastewater containing a T-N concentration of 150 mg/ ${\ell}$.

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Treatment of High Organic Wastewater Using Ecological Water Treatment System (생태학적 수처리 시스템을 이용한 고농도 유기성 폐수처리)

  • 조재훈;김중곤;김준휘;윤성명;이정섭;김시욱
    • Korean Journal of Microbiology
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    • v.37 no.4
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    • pp.317-324
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    • 2001
  • We have previously developed three stage methane fermentation system capable of digesting food wastes effectively and then releasing high organic wastewater as a final product. In this study, we tried to devise an ecological water treatment system, which can efficiently remove the nitrogen and phosphorus contained in the organic wastewater. The system was made of microbiological filters, algae, and waterfleas. Of two species of alga tested, Selenastrum capricornutum showed higher growth rate and more efficiently removed the nitrogen from the wastewater than by Chlorella sp. In addition, the highest growth rate and the nitrogen removal efficiency could be obtained when high concentrations of $Mg^{2+}\; and\; Ca^{2+}$ were added to the diluted wastewater and the molar ratio of nitrogen to phosphorus was adjusted to 10 : 1. In this study the population relationship between alga and water flea was also examined in a test tube. The initial number of algal cells decreased as the waterflea population increased. However, the number of algal cells gradually increased again when waterflea population decreased partly due to the environmental resistance. From these results, it was believed that the ecological water treatment system could be used for removing the nitrogen and phosphorus from organic wastewater very effectively. Moreover, the waterflea cultured by this system as a final predator could be used as a good foodstuff for fishes.

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Treatment of highly concentrated organic wastewater by high efficiency $UV/TiO_{2}$ photocatalytic system (고효율 자외선/광촉매 시스템을 이용만 고농도 유기성 폐수처리)

  • Kim, Jung-Kon;Jung, Hyo-Ki;Son, Joo-Young;Kim, Si-Wouk
    • KSBB Journal
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    • v.23 no.1
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    • pp.83-89
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    • 2008
  • Food wastewater derived from the three-stage methane fermentation system developed in this lab contained high concentration organic substances. The organic wastewater should be treated through advanced wastewater treatment system to satisfy the "Permissible Pollutant Discharge Standard of Korea". In order to treat the organic wastewater efficiently, several optimum operation conditions of a modified $UV/TiO_{2}$ photocatalytic system have been investigated. In the first process, wastewater was pre-treated with $FeCl_{3}$. The optimum pH and coagulant concentration were 4.0 and 2000mg/L, respectively. Through this process, 52.6% of CODcr was removed. The second process was $UV-TiO_{2}$ photocatalytic reaction. The optimum operation conditions for the system were as follows: UV lamp wavelength, 254 nm; wastewater temperature, $40^{\circ}C$; pH 8.0; and air flow rate, 40L/min, respectively. Through the above two combined processes, 69.7% of T-N and 70.9% of CODcr contained in the wastewater were removed.