• Title/Summary/Keyword: 혐기성 수소 발효

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Hydrogen and Organic Acids Production by Fermentation Using Various Anaerobic Bacteria (각종 혐기성 미생물 발효에 의한 유기산 및 수소생산)

  • Kim, Mi-Sun;Yoon, Y.S.;Sim, S.J.;Park, T.H.;Lee, J.K.
    • Journal of Hydrogen and New Energy
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    • v.13 no.4
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    • pp.321-329
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    • 2002
  • Clostridium butyricum, Lactobacillus amylophillus, Lactobacillus amylovorus, Lactobacillus acidophillus, AI-9 produced hydrogen and /or organic acids using glucose, lactose and starch at the anaerobic culture conditions. Cl. butyricum NCIB 9576 evolved 1,700 ml H2/L-culture broth and accumulated butyric acid, acetic acid, propionic acid and ethanol in its culture broth when lactose was used as a carbon source during 24 hrs of fermentation. L. amylovorus ATCC 33620 accumulated lactic and acetic acids and some reducing sugars when starch was used as a carbon source without hydrogen production. Instead of starch as a carbon source, L. amylovorus ATCC 33620 produced lactic acid from algal biomass during fermentation and the acid-heat or freeze-thaw pretreatment of algal biomass accelerate the lactic acid fermentation.

Performance Evaluation of ABR and ASBR for Anaerobic Methane Fermentation (ABR과 ASBR 형태에 따른 혐기성 메탄 발효 운전 성능 평가)

  • Lee, Chae-Young;Lee, Se-Wook
    • Journal of the Korea Organic Resources Recycling Association
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    • v.19 no.2
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    • pp.49-54
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    • 2011
  • This study was conducted to evaluate the performance of methane fermentation from effluent of hydrogen fermentation reactor in anaerobic baffled reactor (ABR) and anaerobic sequencing batch reactor (ASBR). Two reactors were operated at organic loading rate of $1.0kg\;COD/m^3{\cdot}d$ and hydraulic retention time (HRT) of 20 day. Methane production rates of ABR and ASBR for start-up periods were 0.04 L/L/d and 0.19 L/L/d, respectively, whereas maximum methane production rates of ABR and ASBR were 0.25 L/L/d and 0.31 L/L/d, respectively. Removal rates of chemical oxygen demand (COD) in ABR and ASBR for start-up periods were 89% and 92%, respectively. After startup periods, removal rates of COD and volatile solids (VS) in ABR and ASBR were maintained over 90%. The specific methanogenic activity (SMA) increased as microorganism acclimated to the substrate.

Effects of Linear Alkylbenzene Sulfonate on Hydrogen Fermentation of Food Waste (음식물류 폐기물의 수소 발효 시 linear alkylbenzene sulfonate의 영향)

  • LEE, CHAE-YOUNG;CHOI, JAE-MIN
    • Journal of Hydrogen and New Energy
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    • v.27 no.5
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    • pp.510-516
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    • 2016
  • This study examines the effects of linear alkylbenzene sulfonate on hydrogen fermentation of food waste. The hydrogen production rate was similar with different linear alkylbenzen sulfonate (LAS) concentrations. The maximum hydrogen yield increased with increasing LAS concentration. The highest maximum hydrogen yield was $0.550{\pm}0.005mol$ H2/mol hexose at LAS for 5.52 mg/L. But the maximum hydrogen yield decreased above LAS for 11.05 mg/L. The concentration of acetate in control reactor was increased, but it decreased with increasing LAS concentration in other reactors.

Variations of Hydrogen Production and Microbial Community with Different Nitrogen Concentration During Food Waste Fermentation (음식물쓰레기의 혐기성 소화 시 질소농도에 따른 수소생산 및 미생물 군집변화)

  • Lee, Pul-Eip;Lee, Tae-Jin
    • Journal of Korean Society of Environmental Engineers
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    • v.36 no.10
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    • pp.672-678
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    • 2014
  • In this study, variations of fermentative hydrogen production and microbial community were investigated with different nitrogen concentration of food waste. Optimum hydrogen production rate was acquired at 200 mg/L nitrogen concentration of the food waste. Which was eqivalent to 83.43 mL/g dry biomass/hr. However, bio-hydrogen production was inhibitedly reduced at over 600 mg/L of nitrogen concentration whereas proportional relation between hydrogen production and B/A ratio were not observed. Most dominant specie of the microbial community analyzed was Clostridium sp. throughout PCR-DGGE analysis of 16S rDNA. It revealed that most contributing microorganism producing hydrogen were Enterococcus faecium partial, Klebsiella pneumoniae strain ND6, Enterobacter sp. NCCP-231, and Clostridium algidicarnis strain E107 in this experiment.

Effect of Heat Treatment on Biohydrogen Production from Food Waste (음식폐기물의 생물학적 수소 발효시 열처리 효과)

  • Lee, Chae-Young;Park, In-Geun
    • Journal of the Korea Organic Resources Recycling Association
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    • v.18 no.1
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    • pp.81-88
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    • 2010
  • Characteristic of hydrogen production was investigated to find the optimum heat pretreatment conditions for the anaerobic fermentation of food waste. The heat pretreatment of food waste enhanced the hydrogen yield due to the increase of soluble chemical oxygen demand (SCOD) and carbohydrate content. This result revealed that the maximum degrees of disintegration of SCOD and carbohydrate content were 55.1% and 223.6%, respectively. On the other hand, the improvement of hydrogen yield was insignificantly affected by heating reaction time at longer than 20 min; the increase of hydrogen yield was only about 7% between 20min and 1 hour. Therefore, the increase of reaction time more than 20min was not necessary.

Effect of Food Waste Mixing on Hydrogen Gas Production in Anaerobic Digestion of Brown Water from Urine Diversion Toilet (소변분리변기오수(Brown water)의 혐기성 처리 시 음식물 쓰레기 혼합에 따른 수소생산 특성)

  • Seong, Chung-Yeol;Yoon, Cho-Hee;Seo, Gyu-Tae
    • Journal of Korean Society of Environmental Engineers
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    • v.36 no.12
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    • pp.865-872
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    • 2014
  • The study was conducted to evaluate the effect of addition of food waste in brown water for anaerobic hydrogen production. Batch experiment was carried out to determine appropriate food waste to brown water mixing ratio. Maximum hydrogen yield of $6.92mmol\;H_2/g\;COD_{removed}$ was obtained at 70% food waste and 30% brown water. Semi-pilot scale reactor was operated based on result of batch experiment. Semi-pilot reactor operated, mixing 70% food waste and 30% brown water showed significant increment in butyric acid concentration. B/P (Butyric to propionic acid ratio) which is considered as governing factor for hydrogen production was found high (52.64). Maximum hydrogen yield of $25.03mmol\;H_2/g\;COD_{removed}$ was obtained. Result of this study concluded that mixing of food waste to brown water at appropriate ratio assists in enhanced hydrogen fermentation.

Biological Hydrogen Production By Pre-treatment of Sugar Wastewater Using Acidic or Alkaline Chemicals (산·알칼리 전처리를 통한 제당 폐수의 생물학적 수소생산)

  • Lee, Tae-Jin
    • Journal of Korean Society of Environmental Engineers
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    • v.35 no.1
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    • pp.10-16
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    • 2013
  • Characteristics of biological hydrogen production rate and organic acid under anaerobic fermentation process were investigated with sugar wastewater. Hydrogen production rate was higher with alkaline pre-treatment than acidic pre-treatment, resulting in 70% increment. An adequate supply of the nutrients (N or P) into raw sugar wastewater could increase hydrogen production rate. Carbohydrate degradation of the anaerobic fermentation process was not directly related with hydrogen production. Sugar wastewater with the addition of the nutrients shows 3 times higher B/A ratio than the raw sugar wastewater. B/A ratio of the wastewater with alkaline pre-treatment and nutrients addition was most higher than other samples, showing 4.02 of B/A ratio. Higher B/A ratio shows higher hydrogen production rate at each sample.

A Study for the Optimum pH of Hydrogen Production in Anaerobic Batch Reactor (혐기성 회분반응기에서 수소생산 시 최적 pH 산정에 관한 연구)

  • Jun, Yoon-Sun;Park, Jong-Il;Yu, Seung-Ho;Lee, Tae-Jin
    • Journal of Korean Society of Environmental Engineers
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    • v.29 no.1
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    • pp.54-61
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    • 2007
  • The influences of pH were investigated for anaerobic hydrogen gas production under the constant pH condition ranged from pH 3 to 10. Carbon dioxide and hydrogen gas were main components of the gas but methane was not detected in the produced gas when sucrose was added in enrichment medium. When the modified Gompartz equation was applied for the statistical analysis of experimental data, a hydrogen production potential and maximum gas production rate at pH 5 were 1,182 mL and 112.46 mL/g dry wt biomass/hr. The hydrogen conversion ratio was 22.56%. The butyrate/acetate ratios at pH 5 and pH 6 are 1.63 and 0.38. Higher butyrate/acetate ratio produced more hydrogen gas generation. The Haldane equation model was used to find the optimum pH and fitted well with the experimental data$(r^2=0.98)$. The optimum pH and specific hydrogen production were 5.5 and 119.61 mL/g VSS/h.

Influences of pH Conditions on Syngas Fermentation using Clostridium ljungdahlii (pH 조건이 Clostridium ljungdahlii를 이용한 합성가스 발효공정에 미치는 영향)

  • Wang, Long;Hong, Seong Gu
    • Journal of The Korean Society of Agricultural Engineers
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    • v.54 no.6
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    • pp.143-150
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    • 2012
  • 바이오에탄올 생산공정은 당 (Sugar)을 기반으로 하는 공정과 합성가스를 이용하는 공정으로 분류할 수 있다. 이 가운데 합성가스를 이용하는 공정은 촉매를 이용한 화학적 공정과 혐기성 발효에 의한 생물학적 공정의 두 가지로 나뉜다. Clostridium ljungdahlii는 일산화탄소와 수소가 주요 성분으로 구성되는 합성가스를 이용하여 에탄올과 아세트산을 생산할 수 있는 균주 중의 하나로 알려져 있다. 합성가스 발효공정에서 pH는 미생물의 증식과 에탄올 등의 생산에 아주 중요한 요인 중의 하나이다. 본 연구에서는 pH 조건이 미생물의 생장과 에탄올 생산성에 미치는 영향을 조사하였다. C. ljungdahlii 배양은 엄격한 혐기성 조건에서 100 ml의 serum bottle과 pH 제어가 가능한 반응기를 이용한 실험결과, 회분식 배양 조건에서는 미생물의 생장과 에탄올 생산을 위한 최적 초기 pH는 7.0로 나타났다. 미생물 농도는 0.57 g/L, 에탄올 농도 0.91 g/L로 나타났다. pH 4.5 이하에서는 미생물의 생장이 멈추는 것으로 나타났다. pH 제어가 가능한 생물반응기에서는 pH 6.0 일때 에탄올 생산량이 pH 7.0 일때 보다 높게 나타났다. 일정 수준의 미생물 농도를 유지한 조건에서 합성가스를 기포식으로 주입하고 pH 5.9에서 5.4까지 제어하였을 때 미생물량과 에탄올 농도가 증가하였다. 60 시간이 지난 후에 미생물의 농도는 0.498 g/L, 에탄올은 1.056 g/L까지 이르렀다.

Enhanced of Bio-Hydrogen Production from Microalgae by Thermal Pre-Treatment (열처리를 통한 미세조류로부터 바이오수소 생산 향상)

  • Lee, Chaeyoung;Choi, Jaemin
    • Journal of Hydrogen and New Energy
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    • v.24 no.4
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    • pp.275-281
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    • 2013
  • This study was conducted to increase the amount of bio-hydrogen production from microalgae(Chlorella vulgaris) in batch reactors by thermal pre-treatment. The optimization of thermal pre-treatment was conducted using statistic experimental design of response surface methodology. Two experimental parameters of temperature and reaction time were considered. The optimization condition was founded at the coded variables of <0.52, -0.07> corresponding to the experimental of heating temperature of $95.6^{\circ}C$ and reaction time of 57.9 min, respectively. Under the optimal condition, the maximum hydrogen production was predicted to 25.3mL $H_2/g$ dry cell weight (dcw), which was 9.1 times higher value of control(2.8mL $H_2/g$ dcw).