• 제목/요약/키워드: Cold Gas Efficiency

검색결과 121건 처리시간 0.026초

유동층 반응기에서 촉매를 이용한 석탄 가스화반응 특성 (Coal Gasification using Catalyst in a Fluidized Bed Reactor)

  • 이운재;김상돈
    • 한국에너지공학회:학술대회논문집
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    • 한국에너지공학회 1995년도 춘계학술발표회 초록집
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    • pp.129-132
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    • 1995
  • 상압의 유동층반응기 (0.1 m-i.d x 1.6 m-high) 에서 호주탄을 수증기와 공기를 사용하여 가스화 하였다. 또한 반응기에서 촉매효과를 고찰하기 위해 $K_2$SO$_4$+Ni(NO$_3$)$_2$ 촉매를 호주탄에 담지하여 가스화반응을 수행하였다. 생성가스조성, 생성가스량, 탄소전환율, cold gas efficiency 및 발열량 등에 대한 유동화속도 (2~5U$_{mf}$), 반응온도 (750~90$0^{\circ}C$), 공기/석탄 비 (1.6~3.2), 수증기/석탄 비 (0.63~l.26)의 영향을 조사하였다. 탄소전환율, 생성 가스량, 생성가스 발열량 및 cold gas efficiency 는 유동화속도와 반응온도의 증가에 따라 증가하였다. 공기/석탄 비가 증가함에 따라 탄소전환율과 생성가스량 및 cold gas efficiency 는 증가하지만 생성가스 발열량은 감소하였다. 수증기/석탄 비의 증가에 따라 발열량, cold gas efficiency 및 생성가스량은 증가하였으며, 탄소 전환율은 거의 일정하였다. 촉매 가스화반응에서 유동화속도, 반응온도, 공기/석탄 비 및 수증기/석탄 비의 증가에 따라 탄소 전환 율, 생성가스량, 생성가스 발열량 및 cold gas efficiency 는 크게 향상됨을 알 수 있었다.

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Comparative studies of gasification potential of agro-waste with wood and their characterization

  • Tripathi, Amarmani;Shukla, S.K.
    • Advances in Energy Research
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    • 제3권3호
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    • pp.181-194
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    • 2015
  • In this work, an experimental study of the gasification on wood was carried out in downdraft type fixed bed Gasifier attached with 10 kW duel fuel diesel engine. The main objective of the study was to use wood as the biomass fuel for downdraft Gasifier and to evaluate the operating parameter of gasifier unit to predict its performance in terms of gas yield and cold gas efficiency. The influence of different biomass on fuel consumption rate, gas yield and cold gas efficiency was studied. Composition of producer gas was also detected for measuring the lower heating value of producer gas to select the feed stock so that optimum performance in the existing gasifier unit can be achieved. Under the experimental conditions, Lower heating value, of producer gas, cold gas efficiency and gas yields, using wood as a feed stock, are $4.85MJ/m^3$, 46.57% and $0.519m^3/kg$.

Design and Exergy Analysis for a Combined Cycle of Liquid/Solid $CO_2$ Production and Gas Turbine using LNG Cold/Hot Energy

  • Lee, Geun-Sik
    • International Journal of Air-Conditioning and Refrigeration
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    • 제15권1호
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    • pp.34-45
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    • 2007
  • In order to reduce the compression power and to use the overall energy contained in LNG effectively, a combined cycle is devised and simulated. The combined cycle is composed of two cycles; one is an open cycle of liquid/solid carbon dioxide production cycle utilizing LNG cold energy in $CO_2$ condenser and the other is a closed cycle gas turbine which supplies power to the $CO_2$ cycle, utilizes LNG cold energy for lowering the compressor inlet temperature, and uses the heating value of LNG at the burner. The power consumed for the $CO_2$ cycle is investigated in terms of a solid $CO_2$ production ratio. The present study shows that much reduction in both $CO_2$ compression power (only 35% of the power used in conventional dry ice production cycle) and $CO_2$ condenser pressure could be achieved by utilizing LNG cold energy and that high cycle efficiency (55.3% at maximum power condition) in the gas turbine could be accomplished with the adoption of compressor inlet cooling and regenerator. Exergy analysis shows that irreversibility in the combined cycle increases linearly as a solid $CO_2$ production ratio increases and most of the irreversibility occurs in the condenser and the heat exchanger for compressor inlet cooling. Hence, incoming LNG cold energy to the above components should be used more effectively.

석탄과 반탄화 바이오매스 혼합연료의 가스화 (Gasification of Coal and Torrefied Biomass Mixture)

  • 오건웅;장진영;라호원;서명원;문태영;이재구;윤상준
    • 한국수소및신에너지학회논문집
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    • 제28권2호
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    • pp.190-199
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    • 2017
  • Air-blown Gasification of coal and torrefied biomass mixture is conducted on fixed-bed gasifier. The various ratio (9:1, 8:2, 7:3) of coal and torrefied biomass mixture are used. The contents of $H_2$, CO in the syngas were increased with gasification temperature. Carbon conversion tend to increase with temperature and equivalence ratio (ER). However, cold gas efficiency showed maximum point in ER range of 0.26-0.36. The torrefied biomass showed highest cold gas efficiency of 67.5% at $934^{\circ}C$, ER 0.36. Gasification of 8:2 mixture showed the highest carbon conversion and cold gas efficiency and synergy effect.

PDTF를 이용한 석탄가스화 특성 실험 (Pressurized Drop Tube Furnace Tests of Global Gasification Characteristics of Coal)

  • 신용승;최상민;안달홍
    • 에너지공학
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    • 제8권4호
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    • pp.560-566
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    • 1999
  • 가압 조건하에서의 석탄가스화 특성을 규명하기위해 , 온도 압력 , 산소/석탄비, 수증기/석탄비 등을 변화시켜가며 로토탄(sub A)에 대하여 PDTF(Pressuized drop tube furnace)실험을 수행하였다. 실험결과, 상압 조건에서보다 가압조건에서의 가스화가 탄소전환율과 냉가스효율의 측면에서 더 유리한 것으로 측정되었다. 최대의 냉가스효율을 보이는 산소/석탄비의 증가가 냉가스효율의 증가를 가져왔다. 압력이 증가할수록 열분해에 의한 탄소전환의 비중은 감소하고 대신 기고반응에 의한 탄소전환의 비중이 증가하였다.

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PDTF를 이용한 석탄가스화 특성 실험 (Pressurized drop tube furnace tests of global gasification characteristics of coal)

  • 신용승;최상민;안달홍
    • 한국에너지공학회:학술대회논문집
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    • 한국에너지공학회 1999년도 춘계 학술발표회 논문집
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    • pp.23-31
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    • 1999
  • 가압 조건하에서의 석탄가스화 특성을 규명하기 위해, 온도, 압력, 산소/석탄비, 수증기/석탄비 등을 변화시켜가며 로토탄(Sub A)에 대하여 PDTF(Pressurized drop tube furnace) 실험을 수행하였다. 실험결과, 상압 조건에서보다 가압조건에서의 가스화가 탄소 전환율과 냉가스효율의 측면에서 더 유리한 것으로 측정되었다. 최대의 냉가스효율을 보이는 산소/석탄비(무게기준)는 0.5∼0.7(g/g)로 측정되었고, 온도가 충분히 높은 경우에만 수증기/석탄비의 증가가 냉가스효율의 증가를 가져왔다. 압력이 증가할수록 열분해에 의한 탄소전환의 비중은 감소하고 대신 기고반응(heterogeneous reaction)에 의한 탄소전환의 비중이 증가하였다.

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Pilot 규모 석탄 가스화기에서의 탄종별 가스화성능 특성 (Effects of Different Coal Type on Gasification Characteristics)

  • 박세익;이중원;서혜경
    • 한국수소및신에너지학회논문집
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    • 제21권5호
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    • pp.470-477
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    • 2010
  • The IGCC (Integrated gasification combined cycle) is known for one of the highest efficiency and the lowest emitting coal fueled power generating technologies. As the core technology of this system is the gasifier to make the efficiency and the continuous operation time increase, the research about different coal's gasification has been conducted. Our research group had set-up the coal gasifier for the pilot test to study the effect of different coals-Shenhua and Adaro coal- on gasification characteristics. Gasification conditions like temperature and pressure were controlled at a fixed condition and coal feed rate was also controlled 30 kg/h to retain the constant experimental condition. Through this study we found effects of coal composition and $O_2$/coal ratio on the cold gas efficiency, carbon conversion rate. The compounds of coal like carbon and ash make the performance of gasifier change. And carbon conversion rate was decreased with reduced $O_2$/coal ratio. The optical $O_2$/coal ratio is 0.8 for the highest cold gas efficiency approximately. At those operating conditions, the higher coal has the C/H ratio, the lower syn-gas has the $H_2$/CO ratio.

저온분사 코팅공정에서 초음속 슬릿노즐 사용시 유동장 해석 (A Numerical Analysis of Flow Field in the Silt Nozzle During Cold Spray Coating Process)

  • 박혜영;박종인;정훈제;장경수;백의현;한정환;김형준
    • 대한금속재료학회지
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    • 제49권3호
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    • pp.221-230
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    • 2011
  • The cold spray process is an emerging technology that utilizes high velocity metallic particles for surface coating. Metallic powder particles are injected into a converging-diverging de Laval nozzle and accelerated to a high velocity by a supersonic gas flow. The cold spray process normally uses a circular nozzle that has a rather narrow spraying range. To overcome this fault, a slit nozzle was considered in this study. The slit nozzle is anticipated to reduce the coating process time because it has a wider coating width than the circular nozzle. However, the slit nozzle can reduce the coating efficiency because it does not allow as much gas and particle velocity as the circular nozzle. To improve the coating efficiency of a slit nozzle, the shape of the slit nozzle was modified. And the results of gas flow and particle behaviour according to the nozzlers shape were compared by the a numerical analysis. As a results, as Expansion Ratio(ER) of 7.5 was found to be the most optimal condition for enhancing the spraying efficiency when the ER was changed by the variation of nozzle neck and exit size.

액화천연가스(LNG)를 사용한 수소 생산 및 액화 공정 개발 (Design and Analysis of Hydrogen Production and Liquefaction Process by Using Liquefied Natural Gas)

  • 노원준;박시환;이인규
    • Korean Chemical Engineering Research
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    • 제59권2호
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    • pp.200-208
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    • 2021
  • 액체 상태의 수소는 기체 상태의 수소에 비해 수송이 용이하고 에너지 밀도가 높으며 폭발 위험성이 낮다. 하지만 수소 액화 공정은 냉각 사이클에 많은 양의 에너지가 소모된다. 반면에 액화천연가스(LNG; Liquefied Natural Gas)는 재기화 과정에서 다량의 냉열이 버려진다. 따라서 LNG 냉열을 회수하여 수소 냉각에 활용한다면 공정 효율을 높일 수 있다. 또한, 천연가스 개질을 통한 수소 생산은 가장 경제성 있는 방법으로 평가받고 있으며, 이러한 측면에서 LNG를 수소 생산의 원료로 사용할 수 있다. 본 연구에서는 LNG를 원료 및 냉열원으로 사용하여 수소를 생산 및 액화시키는 공정을 개발하고 열역학적 관점에서 공정을 평가하였다. 공정 개발을 위해 기존의 탄화 수소 혼합 냉매와 헬륨-네온 냉매를 이용한 수소 액화 공정을 비교 공정으로 선정하였다. 이후 LNG를 원료 및 수소 예냉의 냉열원으로 사용하는 새로운 공정을 설계하여 에너지 소모량 및 엑서지 효율 측면에서 기존 공정과 비교, 분석하였다. 제안된 공정은 기존 공정 대비 약 17.9%의 에너지 절감 및 11.2%의 엑서지 효율이 향상된 결과를 나타내었다.

건식 석탄공급형 1 Ton/Day급 가스화시스템 설계조건 및 시운전결과 (The Design Conditions and the Initial Operation Results of 1 Ton/Day Class Dry Feeding Coal-Gasification System)

  • 서혜경;정재화;주지선
    • 한국수소및신에너지학회논문집
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    • 제20권4호
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    • pp.352-359
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    • 2009
  • KEPRI is developing a Korean type coal-gasification system and the scale is 20 ton/day. Prior to this pilot plant, a 1 ton/day class gasification system will be used for pre-testing of several coal types. This paper introduces the configuration and design conditions of this 1 ton/day class system, presenting the gas/coal ratio, oxygen/coal ratio, cold gas efficiency, CFD analysis of gasifier, and others. The existing combustion furnace for residual oil was retrofitted as a coal gasifier and a vertical and down-flow type burner was manufactured. Ash removal is carried out through a water quencher and a scrubber following the quencher, and the sulfur is removed by adsorption in the activated carbon tower. The gas produced from the gasifier is burned at the flare stack. In this paper, the results of design conditions and initial operation conditions of I ton/day gasification system are compared together.