• 제목/요약/키워드: Co-firing

검색결과 268건 처리시간 0.032초

미분탄 석탄화력발전에서의 바이오매스 혼소 동향 및 전망 (Status and Perspective of Biomass Co-firing to Pulverized Coal Power Plants)

  • 양원
    • KEPCO Journal on Electric Power and Energy
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    • 제2권4호
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    • pp.525-529
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    • 2016
  • 바이오매스 혼소는 신재생 에너지의 비중을 늘리면서 석탄화력발전에서의 $CO_2$ 배출을 저감할 수 있는 단중기적으로 가장 효과적인 방법이다. 본 논문에서는 이 중 기존 화력발전소에 가장 적은 초기투자비로 적용할 수 있는 직접 혼소법에 대하여 주로 고찰을 수행하고, 국내외 현황 및 전망에 대해 기술하였다. 직접 혼소법은 바이오매스 전용 미분기를 사용하여 혼소율을 늘리는 방법과 저 혼소율에서 초기투자비를 최소화하는 기존 석탄 미분기 사용 바이오매스 혼소법으로 나눌 수 있다. 유럽 및 미국에서는 혼소율을 높이기 위해 많은 상용발전소에서 바이오매스 전용 미분기를 사용하여 10~20% 가량의 혼소율(열량 기준)로 운전을 수행하고 있으나, 국내의 경우에는 RPS 대응을 위해 3~5% 가량의 혼소율에서 기존 석탄 미분기를 그대로 사용하여 바이오매스 혼소를 수행하고 있다. 신기후체제가 시작되고 석탄화력발전에서의 $CO_2$ 저감 요구가 점점 더 증대될 것으로 예상되는 바, 향후 바이오매스 고혼소율이 수행될 수 있는 기술적/저책적 방안이 모색되어야 하며, 이 경우 발생할 수 있는 설비에의 악영향을 면밀히 고려한 연료 표준화 및 전처리 기술이 개발되어야 한다.

미분탄화력발전에서의 바이오매스 혼소 시 플랜트 성능특성 평가 (Evaluation of Plant Performance during Biomass Co-firing in Pulverized Coal Power Plant)

  • 문태영;;이은도;이정우;양원
    • 한국연소학회지
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    • 제19권3호
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    • pp.8-17
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    • 2014
  • The aims of this research were to evaluate effects of biomass co-firing to pulverized coal power plants and the variation of co-firing ratios on the plant efficiency related to power consumption of auxiliary system and flue gas characteristics such as production and component by process simulation based on the existing pulverized coal power plant. In this study, four kinds of biomass are selected as renewable fuel candidates for co-firing: wood pellet(WP), palm kernel shell(PKS), empty fruit bunch(EFB) and walnut shell(WS). Process simulation for various biomass fuels and co-firing ratios was performed using a commercial software. Gas side including combustion system and flue gas treatment system was considering with combination of water and steam side which contains turbines, condenser, feed water heaters and pumps. As a result, walnut shell might be the most suitable as co-firing fuel among four biomass since when 10% of walnut shell was co-fired with 90% of coal on thermal basis, flue gas production and power consumption of auxiliary systems were the smallest than those of other biomass co-firing while net plant efficiency was relatively higher than those of other biomass co-firing. However, with increasing walnut shell co-firing ratios, boiler efficiency and net plant efficiency were expected to decrease rather than coal combustion without biomass co-firing.

다양한 바이오매스 혼소시 국내 미분탄화력에 미치는 이산화탄소 감축 및 경제성 영향 분석 (Influence of Biomass Co-firing on a Domestic Pulverized Coal Power Plant In Terms of CO2 Abatement and Economical Feasibility)

  • 김태현;양원
    • 한국연소학회지
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    • 제22권1호
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    • pp.14-22
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    • 2017
  • Co-firing of renewable fuel in coal fired boilers is an attractive option to mitigate $CO_2$ emissions, since it is a relatively low cost option for efficiently converting renewable fuel to electricity by adding biomass as partial substitute of coal. However, it would cause reducing plant efficiency and operational flexibility, and increasing operation and capital cost associated with handling and firing equipment of renewable fuels. The aim of this study is to investigate the effects of biomass co-firing on $CO_2$ emission and capital/operating cost. Wood pellet, PKS (palm kernel shell), EFB (empty fruit bunch) and sludge are considered as renewable fuels for co-firing with coal. Several approaches by the co-firing ratio are chosen from previous plant demonstrations and commercial co-firing operation, and they are evaluated and discussed for $CO_2$ reduction and cost estimation.

저급탄 석탄화력 및 석탄-바이오매스 혼소 발전을 위한 연소 기술 (Combustion Technology for Low Rank Coal and Coal-Biomass Co-firing Power Plant)

  • 이동훈;고대호;이선근;백구열
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2013년도 제46회 KOSCO SYMPOSIUM 초록집
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    • pp.129-132
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    • 2013
  • The low rank coal combustion and biomass-coal co-firing characteristics were reviewed on this study for the power plant construction. The importance of using low rank coal(LRC) for power plant is increasing gradually due to power generation economy and biomass co-firing is also concentrated as power source because it has carbon neutral characteristics to reduce green-house effect. The combustion characteristics of low rank coal and biomass for a 310MW coal firing power plant and a 100MW biomass and coal co-firing power plant were studied to apply into actual power plant design and optimized the furnace and burner design.

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급속 열처리 공정을 이용한 결정질 실리콘 태양전지의 전극 소결 최적화 (Co-firing Optimization of Crystalline Silicon Solar Cell Using Rapid Thermal Process)

  • 오병진;여인환;임동건
    • 한국전기전자재료학회논문지
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    • 제25권3호
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    • pp.236-240
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    • 2012
  • Limiting thermal exposure time using rapid thermal processing(RTP) has emerged as promising simplified process for manufacturing of solar cell in a continuous way. This paper reports the simplification of co-firing using RTP. Actual temperature profile for co-firing after screen printing is a key issue for high-quality metal-semiconductor contact. The plateau time during the firing process were varied at $450^{\circ}C$ for 10~16 sec. Glass frit in Ag paste etch anti-reflection layer with plateau time. Glass frit in Ag paste is important for the Ag/Si contact formation and performances of crystalline Si solar cell. We achieved 17.14% efficiency with optimum conditions.

가스가마를 사용한 최적의 청자 소성방법 연구 (Optimal firing method of the Celadon using gas kiln)

  • 김상곤
    • 에너지공학
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    • 제28권2호
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    • pp.55-62
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    • 2019
  • 본 연구는 가스가마를 사용하여 청자를 소성 할 경우 최적의 소성조건을 구하고자 하였다. 특히 환원분위기와 산화 분위기 등의 소성분위기를 가마내의 CO 농도로 명확하게 정의하였다. $1250^{\circ}C$로 청자유약을 소성한 경우, 가마 안의 일산화탄소 양이 0~4,500PPM에서는 산화 4,500~25,000PPM에서는 중성, 25,000PPM 이상에서는 환원분위기가 됨을 관찰 할 수 있었다. 가스 가마 안의 소성분위기와 소성온도를 균일하게 하면서 가스소모량과 소성시간을 줄이기 위해서는 가마 안의 연돌을 일부 막은 후 댐퍼로 조절하면 된다. 이와 같은 조절방법으로 가스량은 40%, 소성시간은 1시간을 절약할 수 있다.

석탄-바이오매스 혼소에 따른 슈퍼히터 튜브 고온 부식 특성 연구 (High-Temperature Corrosion Characterization for Super-Heater Tube under Coal and Biomass Co-firing Conditions)

  • 박석균;목진성;정진무;오종현;최석천
    • 동력기계공학회지
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    • 제22권1호
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    • pp.79-86
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    • 2018
  • Many countries have conducted extensive studies for biomass co-firing to enhance the durability of reactor on high-temperature corrosion. However, due to the complicated mechanisms of biomass co-firing, there have been limitations in accurately determining the current state of corrosion and predicting the potential risk of corrosion of power plant. In order to solve this issue, this study introduced Lab-scale corrosion system to analyze the corrosion characteristics of the A213 T91 material under the biomass co-firing conditions. The corrosion status of the samples was characterized using SEM/EDS analysis and mass loss measurement according to various biomass co-firing conditions such as corrosion temperature, $SO_2$ concentration, and corrosion time. As a result, the corrosion severity of A213 T91 material was gradually increased with the increase of $SO_2$ concentration in the reactor. When $SO_2$ concentration was changed from 0 ppm to 500 ppm, both corrosion severity and oxide layer thickness were proportionally increased by 15% and 130%, respectively. The minimum corrosion was observed when the corrosion temperature was $450^{\circ}C$. As the temperature was increased up to $650^{\circ}C$, the faster corrosion behavior of A213 T91 was observed. A213 T91 was observed to be more severely corroded by the effect of chlorine, resulting in faster corrosion rate and thicker oxide layer. Interestingly, corrosion resistance of A213 T91 tended to gradually decrease rather than increases as the oxide layer was formed. The results of this study is expected to provide necessary research data on boiler corrosion in biomass co-firing power plants.

80 kWth급 미분탄 연소 시스템에서 하수슬러지 혼소시 연소 특성 연구 (Study on the Co-firing of Sewage Sludge to a 80 kWth-scale Pulverized Coal Combustion System)

  • 채태영;이재욱;이영재;양원
    • 청정기술
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    • 제25권1호
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    • pp.74-80
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    • 2019
  • 하수슬러지의 열화학적 처리는 수분을 제거하여 연료로 사용되는 하수슬러지의 수분 함량을 낮추어 주는 기술이다. 열화학적 처리된 하수슬러지는 열량이 높아지기 때문에 에너지 집약적 과정이라고 할 수 있다. 이러한 공정 중에 소비되는 에너지를 절약하기 위해 하수슬러지의 수열 탄화 공정을 사용하였다. 수열탄화 공정은 하수슬러지를 사전 건조 없이 깨끗한 고체연료로 전환할 수 있다. 본 연구는 수열탄화 하수슬러지와 미분탄 연소 시스템의 혼소 특성을 조사하는 것을 목적으로 한다. 혼소 시 생성되는 유해물질 및 연소 효율의 변화를 측정하는 것을 목적으로 한다. 본 연구에 사용 된 연소 시스템은 $80kW_{th}$급 연소로로서 1기의 선회류 버너가 장착되어 있다. 두 가지의 석탄을 주 연료로 사용하였고, 하수슬러지의 혼소율은 열량 기준 0% ~ 10%까지 진행하였다. 실험 결과 $NO_x$는 400 ~ 600 ppm, $SO_x$는 600 ~ 700 ppm 사이를 유지하였고, CO는 100 ppm 전후로 일정하게 유지되어 안정적인 연소를 확인할 수 있었다. 하수슬러지를 혼소할 경우, 혼소율이 증가할수록 $NO_x$$SO_x$의 배출량도 증가하였으나 그 편차가 크지 않았다. 연소 배가스에 포함된 오염 물질 배출은 혼소 비율 보다 주 연료인 석탄의 조성에 의해 크게 영향을 받는 것으로 밝혀졌다.

공소결법에 의해 제조된 지지체식 평판형 고체산화물 연료전지 성능 특성 (Fabrication and Characteristics of Supported Type Planar Solid Oxide Fuel Cell By Co-firing Process)

  • 송락현
    • 한국재료학회지
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    • 제13권3호
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    • pp.160-168
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    • 2003
  • The co-firing processes for the supported type planar solid oxide fuel cell were investigated. A flat cell of $7.7${\times}$10.8\textrm{cm}^2$ was fabricated successfully by the co-firing process, in which green films were co-sintered in the forms of two layers of anode/electrolyte or of three layers of anode/electrolyte/cathode with gas distributor. A co-fired cell of two layers yielded a power of 200 ㎽/$\textrm{cm}^2$ at 608 ㎷. Its performance loss was mainly due to iR drop in the anodic gas distributor, which was attributed to poor contact between anodic gas distributor and current collector. The performance in the co-fired cell of three layers was much lower than that of two layers, which resulted from the large iR drop and activation overvoltage at the cathodic side. In the co-fired cell of two layers, the impedance analysis indicated that the performance decay during cell operation is due to both anode overvoltage and iR drop at anode side. Also the electrode reaction of the co-fired two layers' cell is considered to be controlled by activation overvoltage within the low current of 50 ㎃.

목질계 바이오매스와 유연탄의 혼합 연소특성에 관한 연구 (Combustion Characteristics of Coal and Wood Biomass Co-Firing on the Pulverized Coal Combustion Furnace)

  • 김성철;이현동;김재관
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2006년도 제33회 KOSCO SYMPOSIUM 논문집
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    • pp.293-298
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    • 2006
  • There are many researches in progress on co-firing of coal and biomass to reduce carbon dioxide produced from the coal consumption. This study carried out 200 Kg/h combustion test furnace by mixing coal with timber. Coal was mixed with domestic and imported-wood around 10% to 20% based on input energy. For the mixed fuel, combustion temperature, unburned carbon and the composition of flue gas were analyzed. In addition, the tendency of slagging and fouling was examined using a probe. According to the result of the experiment, combustion temperature was depended on the kind of wood and mixing ratio. The unburned carbon loss was higher with increase of wood biomass mixing ratio, as a result, the total heat loss of furnace was slightly increased. The emission of NOx and SOx were decreased by $3{\sim}20%$ and $21{\sim}60%$ respectively. There are no difference of slagging and fouling tendency between biomass co-firing and coal burning only.

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