• 제목/요약/키워드: CHP plant$CO_2$ emission

검색결과 7건 처리시간 0.022초

연료분석 방법을 적용한 산업단지 열병합발전소 이산화탄소 배출량 및 배출특성분석 (Analysis of the $CO_2$ emission amount and characteristics of combined heat and power plants in industrial complex by using the fuel analysis method)

  • 강석훈;정대헌
    • 대한설비공학회:학술대회논문집
    • /
    • 대한설비공학회 2008년도 하계학술발표대회 논문집
    • /
    • pp.1243-1248
    • /
    • 2008
  • $CO_2$ emission amount and characteristics of combined heat and power (CHP) plant in industrial complex of Korea is evaluated by using the fuel analysis method. Fuel analysis methods of several foreign countries and developed one which is developed considering the operation characteristics of the surveyed CHP plants are used. The operation data is surveyed for all of the CHP plants in industrial complex and is composed of fuel consumption amount, generation, sale and efficiency of heat and electricity, condensed steam enthalpy, and etc of the each CHP.

  • PDF

LEAP 모형을 이용한 연료전지 열병합발전설비 도입에 따른 온실가스배출저감 잠재량 분석 (Study of fuel cell CHP-technology on electricity generation sector using LEAP-model)

  • 신승복;전수영;송호준;박종진;;박진원
    • 에너지공학
    • /
    • 제18권4호
    • /
    • pp.230-238
    • /
    • 2009
  • 우리나라는 에너지 절약 및 온실가스 배출저감 기술 중 하나로써 소형 열병합 발전과 소형 연료전지 열병합 발전을 연구해 왔으며 정책적으로 이를 보급하려고 한다. 기존의 석탄화력발전설비, 복합화력발전설비, 석유 화력발전설비를 열병합 발전설비로 대체하는 시나리오를 작성하여 에너지소비량과 온실가스 배출량의 변화추이를 에너지 경제 모델인 LEAP (Long-range Energy Alternative Planning system)을 이용하여 정량적으로 분석하였다. 2019년을 기준으로 열병합 발전설비를 석탄화력발전설비와 교체하였을 경우, 온실가스 배출량이 약 6.34%가 감소하였고 복합화력발전설비와 교체하였을 경우, 온실가스 배출량이 약 0.8%가 증가하였으나 열병합발전설비의 열생산량을 고려해주면 배출량이 감소하는 경향을 보일 것으로 사료된다. 석유화력발전설비를 열병합발전설비로 대체할 경우, 온실가스 배출량이 약 0.8% 감소할 것으로 예상된다.

열병합발전을 이용한 집단에너지사업의 온실가스 감축효과 (Effects of District Energy Supply by Combined Heat and Power Plant on Greenhouse Gas Emission Mitigation)

  • 신경아;동종인;강재성;임용훈;김다혜
    • 한국기후변화학회지
    • /
    • 제8권3호
    • /
    • pp.213-220
    • /
    • 2017
  • The purpose of this study is to analyze effects of Greenhouse Gas (GHG) emission reduction in district energy business mainly based on Combined Heat and Power (CHP) plants. Firstly this paper compares the actual carbon intensity of power production between conventional power plants and district energy plants. To allocate the GHG from CHP plants, two of different methods which were Alternative Generation Method and Power Bonus Method, have been investigated. The carbon intensity of power production in district energy plants ($0.43tonCO_2e/MWh$) was relatively lower than conventional gas-fired power plants ($0.52tonCO_2e/MWh$). Secondly we assessed the cost effectiveness of reduction by district energy sector compared to the other means using TIMES model method. We find that GHG marginal abatement cost of 'expand CHP' scenario (-$134/ton$CO_2$) is even below than renewable energy scenario such as photovoltaic power generation ($87/ton$CO_2$). Finally the GHG emission reduction potential was reviewed on the projected GHG emission emitted when the same amount of energy produced in combination of conventional power plants and individual boilers as substitution of district energy. It showed there were 10.1~41.8% of GHG emission reduction potential in district energy compared to the combination of conventional power plants and individual boilers.

신재생에너지 적용기술이 저탄소녹색도시건설에 미치는 영향연구 (Study for the Design of Zero-carbon City through the Application of Renewable Energies)

  • 박영규;김정인;김갑철
    • 신재생에너지
    • /
    • 제6권4호
    • /
    • pp.15-29
    • /
    • 2010
  • In order to make the best choice for $CO_2$ abatement using renewable energy technologies, it is important to be able to adapt these technologies on the basis of their sustainability, which may include a variety of environmental indicators. This study examined the comparative sustainability of renewable technologies in terms of their life cycle $CO_2$ emissions and embodied energy, using life cycle analysis. The models developed were based on case studies of bioenergy pilot plant in P city of Kyungki province. Final results were total emission of $CO_2$ in Pocheonsi is 670,041 $tCO_2$, around 500,877 $tCO_2$ for electricity and for heat generation, and 169,164 $tCO_2$ for transportation. When used $1,984\;m^3$/day of waste (pig manure etc.) and operated CHP with wood chips of 144,664 ton/year, the $CO_2$ emission in P city was left as is an emission of 449,274 $tCO_2$ and an abatement of $CO_2$ in this region was increased by 32.9%.

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

  • 허남효;이승헌;김병기
    • 신재생에너지
    • /
    • 제4권2호
    • /
    • pp.21-30
    • /
    • 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.

  • PDF

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

  • 허남효;이승헌;김병기
    • 한국신재생에너지학회:학술대회논문집
    • /
    • 한국신재생에너지학회 2008년도 춘계학술대회 논문집
    • /
    • pp.202-205
    • /
    • 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.

  • PDF

소규모 매립가스 자원화를 위한 마이크로터빈 열병합발전 및 유리온실 $CO_2$ 농도 증가 시스템의 타당성 연구 (Feasibility Study of Microturbine CHP and Greenhouse $CO_2$ Enrichment System as Small Scale LFG Energy Project)

  • 박정극;허광범;임상규;이인화
    • 신재생에너지
    • /
    • 제5권2호
    • /
    • pp.15-24
    • /
    • 2009
  • As new small scale LFG (landfill gas) energy project model which can improve economic feasibility limited due to the economy of scale, LFG-Microturbine combined heat and power system with $CO_2$ fertilization into greenhouses was proposed and investigated including basic design process prior to the system installation at Gwang-ju metro sanitary landfill. The system features $CH_4$ enrichment for stable microturbine operation, reduction of compressor power consumption and low CO emission, and $CO_2$ supplement into greenhouse for enhancement plant growth. From many other researches, high $CO_2$ concentration was found to enhance $CO_2$ assimilation (also known as photosynthesis reaction) which converts $CO_2$ and $H_2O$ to sugar using light energy. For small scale landfills which produce LFG under $3\;m^3$/min, among currently available prime movers, microturbine is the most suitable power generation system and its low electric efficiency can be improved with heat recovery. Besides, since its exhaust gas contains very low level of harmful contaminants to plant growth such as NOx, CO and SOx, microturbine exhaust gas is a suitable and economically advantageous $CO_2$ source for $CO_2$ fertilization in greenhouse. The LFG-Microturbine combined heat and power generation system with $CO_2$ fertilization into greenhouse gas to enhance plant growth is technologically and economically feasible and improves economical feasibility compared to other small scale LFG energy project model.

  • PDF