• 제목/요약/키워드: biogas plant

검색결과 104건 처리시간 0.025초

거대조류 바이오매스로부터 생산된 바이오가스를 사용하는 연료전지 기반 열병합발전의 타당성 검토 (Feasibility of Combined Heat and Power Plant based on Fuel Cells using Biogas from Macroalgal Biomass)

  • 유준
    • 청정기술
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    • 제24권4호
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    • pp.357-364
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    • 2018
  • 미세조류 및 거대조류 등 3세대 바이오매스로부터 바이오가스를 생산하는 연구는 다양한 규모의 실험을 통해 수행된 바 있다. 이 논문에서는 3세대 바이오매스 중 거대조류, 즉 해조류 바이오매스로부터 유래된 바이오가스를 이용하는 복합 열병합 발전의 상용화 가능성을 살펴보았다. 이를 위해 고체산화물 연료전지와 가스터빈, 그리고 유기랭킨사이클로 이루어진 산업 스케일의 통합 열병합발전을 상용 공정모사기를 이용하여 설계, 모사하였고, 계산된 열 및 물질수지를 통해 장치의 가격을 추정하고 경제성을 분석하였다. 모사 결과 설계된 열병합발전 공정은 시간당 62.5톤의 건조 갈조류 원료로부터 생산된 36톤의 바이오가스를 이용하여 68.4 MW의 전력을 생산한다. 이 결과를 토대로 다양한 시나리오에 대해 경제적으로 평가하고 균둥화 발전비용(levelized electricity cost, LEC)을 계산하였는데, SOFC의 수명이 5년, 스택 가격이 $$225kW^{-1}$일 때 LEC는 12.26 ¢ $kWh^{-1}$로 기존의 고정 발전과 동등한 수준으로 나타났다.

저탄소 녹색도시 조성을 위한 신도시 하수처리시설의 에너지 자립 효과 분석 (Effect Analysis on Self-supporting Energy of Newtown Sewage Treatment Facility for Low-carbon Green City)

  • 안수정;현경학;김종엽;정연규
    • 상하수도학회지
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    • 제24권6호
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    • pp.683-690
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    • 2010
  • Renewable and unutilized energy (biogas power generation, wind power, solar, small hydro-power, sewage heat source, etc.) seems to be suitable to install for the sewage treatment facilities. There are 357 sewage treatment plants in 2007. 17 plants among these have been operating for self-supporting energy by using solar power, small hydro-power and biogas in 2008. Newly built sewage treatment plant of 96,000 $m^3$/day for a newtown is expected to get up to energy consumption of 10 GWh/yr. If solar energy, small hydro-power and biogas-equipments were applied to the new treatment plant, self-supporting energy of the new sewage treatment plant will get up to 56.1%. As a results, about 2,379ton $CO_2$/yr $CO_2$ emission reduction can be expected by using renewable energy. These efforts for self-supporting energy will lead sewage treatment plant to new energy recycle center.

THE EFFECTS OF OPERATIONAL AND FINANCIAL FACTORS ON THE ECONOMICS OF BIOGAS PRODUCTION FROM DAIRY COW FECES AND WASTEWATER

  • Kobayashi, S.;Masuda, Y.
    • Asian-Australasian Journal of Animal Sciences
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    • 제6권1호
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    • pp.139-145
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    • 1993
  • Biogas created from animal waste is a precious energy source. A practical and successful utilization of the biogas is not easy, because there lie some difficulties in biogas production and facilities investment. In this study, the requisites for a successful biogas utilization were discussed. The production results obtained in the previous operation of anaerobic digestion plant were used for the simulation. When the slurry heating was designed for constant biogas generation, depreciation costs of the facilities amounted 1,175,000 yen per year, and biogas productions at $24.5^{\circ}C$, $30.0^{\circ}C$ and $35.5^{\circ}C$ were $16.8m^3$, $17.6m^3$ and $25.1m^3$, respectively. Removal ratios of organic matters were not so high. At $35.5^{\circ}C$, energy value of the biogas produced was estimated 125.5 Mcal per day, and the following heat loss (y Mcal/day) was brought about by the temperature difference ($X^{\circ}C$) between the digester and atmosphere; y = 0.769X - 5.375. The costs of biogas production per cow were assumed to decrease according to enlargement of feeding scale, especially on scales of more than 30 cows. On recent levels of costs and prices of energy in Japan, they were nearly equal to 2 to 3 fold of the price of municipal mixed gas when a anaerobic digester was compulsorily heated and kept at $30.0^{\circ}C$ or $35.5^{\circ}C$.

바이오가스 기술의 사회적 수용과정 분석 (The Social Embedding of Biogas Technology in Korea)

  • 송위진
    • 과학기술학연구
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    • 제11권1호
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    • pp.1-29
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    • 2011
  • 이 글에서는 신기술의 사회적 수용과정을 분석 평가하기 위한 틀을 개발하고 그에 입각하여 바이오가스 기술의 수용과정을 분석한다. 분석의 틀에서는 기술 조직 제도의 공진화론에 입각해서 신기술이 사회에 수용되기 위해서는 기술적 경제적 문제만이 아니라 신기술의 사회적 위험에 대한 관리가 이루어져야 한다는 점을 논의할 것이다. 이와 함께 기술 경제적 문제해결을 위한 기술학습활동과 기술의 정당성을 향상시키기 위한 기술정치활동이 필요하다는 점도 강조할 것이다. 다음으로 바이오가스 플랜트 기술의 특성과 개발 운영현황을 살펴본 후, 제시된 분석틀을 활용하여 바이오가스 플랜트 기술의 사회적 수용과정에서 나타나는 문제점을 검토하고 사회적 수용을 촉진하기 위한 방안을 제시한다.

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유기성폐기물을 이용한 바이오가스 생산 및 활용기술 (Biogas Production and Utilization Technologies from Organic Waste)

  • 허남효;이승헌;김병기
    • 신재생에너지
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    • 제4권2호
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    • pp.21-30
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    • 2008
  • Anaerobic digestion (AD) is the most promising method of treating and recycling of different organic wastes, such as OFMSW, household wastes, animal manure, agro-industrial wastes, industrial organic wastes and sewage sludge. During AD, i.e. degradation in the absence of oxygen, organic material is decomposed by anaerobes forming degestates such as an excellent fertilizer and biogas, a mixture of carbon dioxide and methane. AD has been one of the leading technologies that can make a large contribution to producing renewable energy and to reducing $CO_2$ and other GHG emission, it is becoming a key method for both waste treatment and recovery of a renewable fuel and other valuable co-products. A classification of the basic AD technologies for the production of biogas can be made according to the dry matter of biowaste and digestion temperature, which divide the AD process in wet and dry, mesophilic and thermophilic. The biogas produced from AD plant can be utilized as an alternative energy source, for lighting and cooking in case of small-scale, for CHP and vehicle fuel or fuel in industrials in case of large-scale. This paper provides an overview of the status of biogas production and utilization technologies.

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유기성폐기물을 이용한 바이오가스 생산 및 활용기술 (Biogas Production and Utilization Technologies from Organic waste)

  • 허남효;이승헌;김병기
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2008년도 춘계학술대회 논문집
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    • pp.202-205
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    • 2008
  • Anaerobic digestion(AD) is the most promising method of treating and recycling of different organic wastes, such as OFMSW, household wastes, animal manure, agro-industrial wastes, industrial organic wastes and sewage sludge. During AD, i.e. degradation in the absence of oxygen, organic material is decomposed by anaerobes forming degestates such as an excellent fertilizer and biogas, a mixture of carbon dioxide and methane. AD has been one of the leading technologies that can make a large contribution to producing renewable energy and to reducing $CO_2$ and other GHG emission, it is becoming a key method for both waste treatment and recovery of a renewable fuel and other valuable co-products. A classification of the basic AD technologies for the production of biogas can be made according to the dry matter of biowaste and digestion temperature, which divide the AD process in wet and dry, mesophilic and thermophilic. The biogas produced from AD plant can be utilized as an alternative energy source, for lighting and cooking in case of small-scale, for CHP and vehicle fuel or fuel in industrials in case of large-scale. This paper provides an overview of the status of biogas production and utilization technologies.

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마이크로버블 장치를 이용한 하수처리장 바이오가스의 황화수소 제거 (Hydrogen Sulfide Removal of Biogas from Sewage Treatment Plant with Micro-bubble Generation System)

  • 정재억;정용준
    • 한국습지학회지
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    • 제22권4호
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    • pp.239-244
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    • 2020
  • 혐기성소화조에서 발생하는 바이오가스는 열과 전력을 생산하는데 사용되기 전에 불순물, 특히 황화물 제거 공정이 수반 되어야 한다. 본 연구에서는 시설용량 46,000㎡/d의 하수처리장을 대상으로 습식스크러빙 장치를 활용하여 운전 조건의 변화에 따른 메탄감소율과 황화수소 및 이산화탄소의 제거율을 평가하였다. 부분순환에서 장치 유입전 평균 59.7%의 CH4은 처리후 57.4%로 감소하여 3.9%의 감소율을 나타내어 마이크로버블 산화에도 불구하고 천천히 기화되는 것을 알 수 있었다. CO2의 경우 38%가 장치로 유입되어 32%로 배출됨에 따라 15.8%의 제거율을 나타냈다. 1,400ppm의 H2S는 DIWS장치로 유입되어 334ppm으로 배출되어 76.1%의 감소율을 나타냈다.

하수슬러지 Biogas의 신재생에너지화 타당성 연구 (A Feasibility Study for Renewable Energy from Sewage Sludge Biogas)

  • 강호;이혜미;조상선;박선욱;정지현
    • 한국물환경학회지
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    • 제26권5호
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    • pp.754-760
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    • 2010
  • This study was carried out not only to evaluate optimal operating condition to increase biogas production, but also to estimate feasibility of renewable energy from anaerobic digester of sewage sludge. Semi- continuous Fed and Mixed Reactors (SCFMRs) were operated in various condition to quantify the reactor variables. The result of SCFMR operation showed that the biogas productivity and total volatile solids (TVS) removal of total solids (TS) 4% reactor at hydraulic retention time (HRT) 20 days with Organic Loading Rate (OLR) of $1.45kg/m^3-d$ were $0.39m^3/m^3-d$ and 26.7%, respectively which was two times higher than that of TS 2.5% reactor. Consequently the daily biogas production of $20,000m^3$ would be possible from the total volume of $52,000m^3$ of anaerobic digesters of the municipal wastewater treatment plant in D city. In feasibility study for the Biogas utilization, combined heat and power system (CHP) and CNG gasification were examined. In case of CHP, the withdrawal period of capital cost for gas-engine (GE) and micro gas-turbine (MGT) were 7.7 years and 9.1 years respectively. biogas utilization as Clean Natural Gas (CNG) shows lower capital cost and higher profit than that of CHP system. CNG gasificaion after biogas purification is likely the best alternative for Biogas utilization which have more economic potential than CHP system. The withdrawal period of capital cost appeared to be 2.3 years.

바이오가스 연료기반 연료전지발전 기술동향 (Technology Trends of Fuel Cell Power Plant Based on Biogas Fuel)

  • 이종규;전재호;이종연
    • 신재생에너지
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    • 제4권3호
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    • pp.5-14
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    • 2008
  • The target for the reduction of $CO_2$ emissions, as specified in the Kyoto Protocol, can only be achieved by an extended use of renewable fuels and the increasing of the energy efficiency. The energy generation from waste gases with a reasonable content of methane like biogas can significantly contribute to reach this target. A further reduction of greenhouse gas emissions is possible by increasing the electrical efficiency using progressive technologies. Fuel cells can be highly energy conversion devices. Utilizing biogas as the fuel for fuel cell systems offers an option that is technically feasible, potentially economically attractive and greenhouse gas neutral. High temperature fuel cells that are able to operate with carbon monoxide in the feed are well suited to these applications. Furthermore, because they do not require noble metal catalysts, the cost of high-temperature fuel cells has the greatest potential to become competitive in the near future compared to other types of fuel cells.

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