• 제목/요약/키워드: Methane production rate

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플라즈마트론을 이용한 바이오가스 개질로부터 수소생산 (Hydrogen Gas Production from Biogas Reforming using Plasmatron)

  • 김성천;전영남
    • Korean Chemical Engineering Research
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    • 제44권5호
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    • pp.528-534
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    • 2006
  • 고온 플라즈마가 적용된 플라즈마트론을 이용하여 바이오가스 개질을 통해 수소를 생산하는데 있어서 최적 운전 조건에 대해 연구하였다. 음식물 쓰레기의 혐기성 발효조에서 생성된 바이오가스 구성비($CH_4/CO_2$)가 1.03, 1.28, 2.12인 바이오가스로 개질실험을 수행하고, 수소 생산과 메탄 전환율을 향상시키기 위해 바이오가스 유량비, 수증기 유량비, 입력전력 변화와 같은 변수별 연구를 수행하였다. 바이오가스 유량비(biogas/TFR : total flow rate), 수증기 유량비($H_2O/TFR$: total flow rate), 입력전력이 각각 0.32~0.37, 0.36~0.42, 8 kW일 때 메탄의 전환율이 81.3~89.6%인 최적운전조건을 보였다. 이때 합성가스 중의 수소와 일산화탄소의 농도는 27.11~40.23%, 14.31~18.61%이며, 수소 수율은 40.6~61%, 에너지 전환율은 30.5~54.4%, $H_2/CO$ 비는 1.89~2.16이다.

혐기성 소화를 위한 폐활성슬러지의 초음파와 알칼리 전처리 (Ultrasonic and Alkaline Pre-treatments of Waste Activated Sludge for Enhancing Anaerobic Digestion)

  • 박인근;손한형;이채영
    • 유기물자원화
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    • 제26권2호
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    • pp.53-63
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    • 2018
  • 가수분해반응에서 율속 단계가 되어 수리학적 체류시간이 길어지고 처리 효율이 떨어지며 불안정한 처리 및 대규모 소화조 크기에 문제가 발생한다. 따라서 처리효율을 높이기 위해서는 하수 슬러지를 방해하는 요소들에 대해 혐기성 소화를 최소화하기 위한 전처리가 필요하며, 본 연구에서는 폐수 처리공정에서 초음파 및 알칼리 처리를 이용한 하수 슬러지의 분해 및 전처리효과를 검토하였다. 초음파 및 알칼리 전처리를 사용한 폐활성슬러지에 대한 혐기성 생분해도 분석결과 지체기의 시간이 감소하는 동안 누적 메탄 생산 및 메탄 생성 속도가 증가하였다. 따라서 초음파 및 알칼리 전처리를 이용한 하수 슬러지의 전처리는 율속단계를 작용하는 가수분해단계에서 지체기를 포함한 반응 시간을 줄이고 메탄 생산 속도 및 최종 메탄 수율을 증가시켜 효과적으로 가속화할 수 있다.

혐기성 유동층 반응기에서 층팽창에 따른 처리특성 및 미생물 부착특성 (A Study on the Characteristics of the Treatment with Bed Expansion and the Biomass Attachment in the Start-up of the AFBR)

  • 안재동;정종식;장인용
    • 한국환경보건학회지
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    • 제21권2호
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    • pp.20-26
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    • 1995
  • The objective of this study is to estimate the effect of the bed expansion and the characteristics of attached biomass in the start-up in the anaerobic fluidized bed reactor(AFBR). The fluidized bed reactor was operated with bacteria supported on the bed of granular activated carbon(GAC). The reactor was operated at 35$\circ$C, 5 kg $COD/m^3\cdot day$ at bed expansion varying from 0 to 100% with soluble glucose wastewater(5,000 mg/l). When the effluent reached a steady state at 100% of bed expansion, maximum COD removal efficiency of 87.3% and 0.031 $m^3CH_4/kg COD_{removed}$ were obtained. At higher bed expansion, COD removal efficiency, methane production rate and biogas production rate increased. Especially, at 50% of bed expansion, the efficiency of the treatment increasedg rapidly in the AFBR. The biomass colonized in the pits and crevices of the GAC particle and no complete biofilm was established in the bioreactor during the experiment.

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입상미생물을 이용한 고농도 유기성폐수의 혐기성처리 (Anaerobic Treatment of High Strength Organic Wastewater by Granulated Microorganism)

  • 임재명;한동준;전태성;이현주
    • 산업기술연구
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    • 제16권
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    • pp.61-70
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    • 1996
  • This research aims to find granulation and organic removal of the piggery wastewater with the upflow blanket filter(UBF) reactor. UASB process had the effect of high pH on the granulation phase. But teh effect was decreased after the granule formation. The filter zone of the UBF reactor had the function of GSS and contributed to removing the organic because of its biofilm formation. The removal rates of total COD and soluble COD were 70% ~ 80% and 60 ~ 80% at an influent organic loading range of $2{\sim}17.4kgCOD/m^3{\cdot}d$, respectively. The methane production rate with the organic removal was $0.21{\sim}0.34{\ell}CH_4/gCOD_{rem}$ and the maximum methan production rate was $0.34CH_4{\ell}/gCOD_{rem}$ at the volumetric loading $5kgCOD/m^3{\cdot}d$.

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GlidArc 플라즈마를 이용한 메탄 부분산화 및 Ni 촉매 개질 특성 (Characteristic of Partial Oxidation of Methane and Ni Catalyst Reforming using GlidArc Plasma)

  • 김성천;전영남
    • 대한환경공학회지
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    • 제30권12호
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    • pp.1268-1272
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    • 2008
  • 부분산화가 적용된 저온플라즈마는 메탄으로부터 합성가스를 생산하는 기술이다. 저온 플라즈마 기술은 수증기 개질, 이산화탄소 개질을 이용한 개질기 보다 소형화와 시동특성이 우수한 장점을 가지고 있으며 다양한 분야에 적용이 가능하다. 본 연구에서는 GlidArc 방전을 이용한 저온플라즈마 개질기를 제안하였다. 개질 특성을 파악하고자 변수별 연구로서 가스 조성비율(O$_2$/CH$_4$), 수증기 주입량, 니켈과 철 촉매의 비교 및 이산화탄소 주입량에 대해 실험을 수행하였다. 최적의 수소 생산 조건은 O$_2$/C비가 0.64, 주입 가스유량은 14.2 L/min, 촉매의 반응기의 내부 온도는 672$^{\circ}C$, 주입 가스 량에 대한 수증기 유량 비율은 0.8 그리고 유입전력이 1.1 kJ/L일 때, 41.1%로 최대 수소 농도를 나타냈다. 그리고 이때 메탄의 전환율, 수소 수율 그리고 개질기 열효율은 각각 46.5%, 89.1%, 37.5%를 나타냈다.

혐기소화 공정 및 원료 유형별 바이오가스 생산에 미치는 영향 (Effect of biogas production to different anaerobic digestion systems and feeding stocks)

  • 신중두;홍승길;박우균;박상원
    • 유기물자원화
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    • 제19권4호
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    • pp.66-73
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    • 2011
  • 본 연구의 목적은 TPAD(Temperature Phased Anaerobic Digestion)시스템 [고온조($55^{\circ}C$)와 중온조 ($35^{\circ}C$)]과 이상혐기소화시스템[중온조($35^{\circ}C$)와 중온조($35^{\circ}C$)]공정을 비교하고, 이러한 공정을 적용한 유기성 자원별 바이오가스 생산량을 비교하는 것이었다. 원료별 TPAD시스템을 적용한 바이오가스 생산량을 비교해 볼 때, 고온조에서 돈분과 음식물류폐기물을 혼합한 원료를 사용한 경우는 돈분만 사용하였을 때 보다 혐기소화 공정의 안정화에 걸리는 기간은 3.5배가 지연되었지만, 중온조의 경우, 돈분과 음식물류폐기물을 혼용 처리하였을때 메탄가스 농도 약 70%로 체류시간을 5일 앞당겨 안정화 단계에 도달하는 것으로 나타났다. 돈분과 음식물류폐기물을 혼합한 원료의 경우 고온조에서 혐기소화 60일을 기점으로, 또한 중온조의 경우 초기단계인 혐기소화 3일 후부터 돈분만 사용한 경우 보다 누적 메탄가스 발생량이 많게 나타났다. 또한 혐기소화 공정측면에서 돈분을 이용한 TPAD시스템 운영은 이상혐기소화시스템보다 조기에 공정의 안정화 단계에 도달하는 것으로 나타났다.

Cavitation에 의해 가용화된 슬러지의 혐기성 생분해도 향상에 관한 연구 (Enhancement of Anaerobic Biodegradability using the Solubilized Sludge by the Cavitation process)

  • 김동하;이재규;정의택;정호영
    • 상하수도학회지
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    • 제28권1호
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    • pp.25-32
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    • 2014
  • In order to investigate the effective pretreatment methods in WAS(=waste activated sludge) solubilization, the values of SCOD yield per unit SS (SCOD/gSS.hr) were compared. After the hydrodynamic cavitation with pH of 12.5, SCOD increased to 7800 mg/L, SS decreased to 45 % and the solubilization rate was 29 %. Combination of alkality (pH 12.5) and the cavitation seems to be the optimal condition for sludge solubilization. After the cavitational pretreatment, efficiencies of anaerobic digestion of the unfiltered sludge(the control), raw sludge and pretreated sludge were evaluated with BMP(=biochemical methane potential) tests. For evaluation of the biodegradability characteristics of pretreated sewage sludge, the methane production has been measured for 6 months. The methane production of pretreated sludge increased 1.4 times than that of untreated sludge. The result indicates that the cavitationally pretreated sludge was a better biodegradability substrate in anaerobic condition compared to raw sludge. It is obvious that cavitational pretreatment could enhance not only solubilization but also biodegradability of WAS. In conclusion, cavitational pretreatment of WAS to convert the particulate into soluble portion was shown to be effective in enhancing the digestibility of the WAS.

Use of Lysozyme as a Feed Additive on In vitro Rumen Fermentation and Methane Emission

  • Biswas, Ashraf A.;Lee, Sung Sill;Mamuad, Lovelia L.;Kim, Seon-Ho;Choi, Yeon-Jae;Bae, Gui-Seck;Lee, Kichoon;Sung, Ha-Guyn;Lee, Sang-Suk
    • Asian-Australasian Journal of Animal Sciences
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    • 제29권11호
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    • pp.1601-1607
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    • 2016
  • This study was conducted to determine the effect of lysozyme addition on in vitro rumen fermentation and to identify the lysozyme inclusion rate for abating methane ($CH_4$) production. An in vitro ruminal fermentation technique was done using a commercial concentrate to rice straw ratio of 8:2 as substrate. The following treatments were applied wherein lysozyme was added into 1 mg dry matter substrate at different levels of inclusion: Without lysozyme, 2,000, 4,000, and 8,000 U lysozyme. Results revealed that, lysozyme addition had a significant effect on pH after 24 h of incubation, with the highest pH (p<0.01) observed in 8,000 U lysozyme, followed by the 4,000 U, 2,000 U, and without lysozyme. The highest amounts of acetic acid, propionic acid (p<0.01) and total volatile fatty acid (TVFA) (p<0.05) were found in 8,000 U after 24 h of incubation. The $CH_4$ concentration was the lowest in the 8,000 U and the highest in the without lysozyme addition after 24 h of incubation. There was no significant differences in general bacteria, methanogen, or protozoan DNA copy number. So far, addition of lysozyme increased the acetate, propionate, TVFA, and decreased $CH_4$ concentration. These results suggest that lysozyme supplementation may improve in vitro rumen fermentation and reduce $CH_4$ emission.

잉여슬러지의 열적가용화를 통한 가용화 및 혐기성소화 생분해도 향상 (Enhancement of Anaerobic Biodegradability and Solubilization by Thermal Pre-treatment of Waste Activated Sludge)

  • 정성엽;정석영;장순웅
    • 신재생에너지
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    • 제10권1호
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    • pp.20-29
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    • 2014
  • The present study investigated the effects of thermal pre-treatment on the enhancement of anaerobic biodegradability of waste activated sludge at varied TS concentration levels. The activated sludges were thermally oxidized for 30 minutes at $80{\sim}200^{\circ}C$ with varied TS concentrations (2%, 4% and 6%). and then, sludge characteristics, solubilization efficiency and methane production yield of thermally pre-treated sludges were analyzed. The higher the temperature in the thermal pre-treatment, the higher the concentration levels of dissolved matters such as $SCOD_{Cr}$, $NH_4{^+}$ and VFAs, which indicates that the thermal pre-treatment facilitates the hydrolysis and acid fermentation. Furthermore, the solubilization efficiency was increased in proportion to the temperature rise at all TS concentrations and was reached at 68.9%, 55.6% and 53.1%, respectively, at $200^{\circ}C$. In the BMP test of the pre-treated sludges, higher methane production yields were observed as 0.313. 0.314 and $0.299m^3\;CH_4/kg\;VS_{add}$ at the condition of TS 2% ($160^{\circ}C$), 4% ($160^{\circ}C$) and 6% ($180^{\circ}C$), respectively, and degradation rate was increased by 84%, 79% and 65% compared with non-pretreated waste activated sludge. These findings suggest the effectiveness of thermal pre-treatment of waste activated sludge for anaerobic biodegradable process.

에너지 생산형 하수처리장을 위한 가용 기술과 통합관리 방안 (Available Technology and Integrated Management Plan for Energy-positive in the Sewage Treatment Plant)

  • 송민수;김형호;배효관
    • 한국물환경학회지
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    • 제36권1호
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    • pp.55-68
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    • 2020
  • Because of the intensified environmental problems such as climate change and resource depletion, sewage treatment technology focused on energy management has recently attracted attention. The conversion of primary sludge from the primary sedimentation tank and excessive sludge from the secondary sedimentation tank into biogas is the key to energy-positive sewage treatment. In particular, the primary sedimentation tanks recover enriched biodegradable organic matter and anaerobic digestion process produces methane from the organic wastes for energy production. Such technologies for minimizing oxygen demand are leading the innovation regarding sewage treatment plants. However, sewage treatment facilities in Korea lack core technology and operational know-how. Actually, the energy potential of sewage is higher than sewage treatment energy consumption in the sewage treatment, but current processes are not adequately efficient in energy recovery. To improve this, it is possible to apply chemically enhanced primary treatment (CEPT), high-rate activated sludge (HRAS), and anaerobic membrane bioreactor (AnMBR) to the primary sedimentation tank. To maximize the methane production of sewage treatment plants, organic wastes such as food waste and livestock manure can be digested. Additionally, mechanical pretreatment, thermal hydrolysis, and chemical pretreatment would enhance the methane conversion of organic waste. Power generation systems based on internal combustion engines are susceptible to heat source losses, requiring breakthrough energy conversion systems such as fuel cells. To realize the energy positive sewage treatment plant, primary organic matter recovery from sewage, biogas pretreatment, and co-digestion should be optimized in the energy management system based on the knowledge-based operation.