• Title/Summary/Keyword: 가스화 반응

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고압 Thermogravimetry를 이용한 석탄의 고압가스화 특성분석

  • ;;W. McClennen
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1995.11a
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    • pp.27-32
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    • 1995
  • 석탄가스화 복합발전은 최소 14기압이상의 가압상태에서 석탄을 가스화시킨다. 이에 따른 가압상태의 석탄가스화반응을 규명하기 위하여 고압 Thermogravimetry를 사용하여 열분해특성을 측정하였고, 생성물질은 on-line으로 연결한 Gas Chromatography/Mass Spectrometry로 분석하였다. 가압상태에 따른 열분해특성은 char 분해반응 단계에서 현격한 차이를 나타내었고, 수증기 주입에 따른 가스화반응에 의하여 80$0^{\circ}C$이상에서 큰 질량변화 차이를 보여줌을 확인하였다. 또한, Pittsburgh탄에서는 가압의 조건이 bitumen의 열분해시작을 늦추고 스팀은 전 열분해반응에서 방출되는 나프탈렌의 양을 증가시킨다. 유시 벨리탄에서는 char의 가스화에 의하여 나프탈렌 및 벤젠류의 발생이 스팀이 없는 상태에 비해 지연되었다.

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A Study on the Water Gas Shift Reaction of RPF Syngas (RPF(Refuse plastic fuel) 합성가스의 수성가스 전환 반응 연구)

  • Roh, Seon Ah
    • Resources Recycling
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    • v.30 no.6
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    • pp.12-18
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    • 2021
  • The water-gas shift reaction is the subsequent step using steam for hydrogen enrichment and H2/CO ratio-controlled syngas from gasification. In this study, a water-gas shift reaction was performed using syngas from an RPF gasification system. The water-gas shift using a catalyst was performed in a laboratory-scale tube reactor with a high temperature shift (HTS) and a low temperature shift (LTS). The effects of the reaction temperature, steam/carbon ratio, and flow rate on H2 production and CO conversion were investigated. The operating temperature was 250-400℃ for the HTS system and 190-220℃ for the LTS system. Steam/carbon ratios were between 1.5 and 3.5, and the composition of reactant was CO : 40 vol%, H2 : 25 vol%, and CO2 : 25 vol%. The CO conversion and H2 production increased as the reaction temperature and steam/carbon ratio increased. The CO conversion and H2 production decreased as the flow rate increased due to reduced retention time in the catalyst bed.

A Kinetic Study of Steam Gasification of Low Rank Coal, Wood Chip and Petroleum Coke (저등급 석탄, Wood Chip, Petroleum Coke의 수증기 가스화반응 Kinetics 연구)

  • Gong, Sujin;Zhu, Xueyan;Kim, Yangjin;Song, Byungho;Yang, Won;Moon, Woongsig;Byoun, Yoonseop
    • Korean Chemical Engineering Research
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    • v.48 no.1
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    • pp.80-87
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    • 2010
  • Lignite of low rank coal and petroleum coke of high sulfur content can be high potential energy sources for coal gasification process because of their plentiful supply. The kinetic study of steam gasification has been performed in an atmospheric thermobalance with wood chip, lignite, bituminous, anthracite, pet-coke. The effects of gasification temperature($600{\sim}850^{\circ}C$) and partial pressure of steam(30~90 kPa) on the gasification rate have been investigated. The modified volumetric reaction model was applied to the experimental data to describe the behavior of carbon conversion and to evaluate the needed kinetic parameters. Lignite and wood chip with high volatile content showed high average gasification rates comparing to other fuel and thus they might be proper fuel for gasification processes. The activation energies for wood chip, lignite, bituminous, anthracite, and pet-coke through Arrhenius plot were found to be 260.3, 167.9, 134.6, 82.2, 168.9 kJ/mol, respectively. The expression of apparent reaction rates for steam gasification of various chars have been proposed as basic information for the design of coal gasification processes.

Characteristics of Fluidized Bed Type Gasification of Kideco Coal (키데코탄의 유동층 가스화 반응 특성)

  • Bae, Dal-Hee;Jo, Sung-Ho;Shun, Do-Won;Moon, Young-Sub
    • Journal of Energy Engineering
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    • v.16 no.1 s.49
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    • pp.32-39
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    • 2007
  • Coal pyrolysis processes vary with the origin and rank of coal. It is difficult to generalize the characteristics of coal pyrolysis reaction because the process consists of numerous reactions including pyrolysis, gasification, and combustion. To find out the optimum process condition it is necessary to determine the condition fur each coal from the smatter scale experiment. In this study pressurized ($2kg_{f}/cm^{2}$) fluidized bed, low temperature ($735{\sim}831^{\circ}C$) gasification using Kideco coal was performed. The reaction condition and product gas composition were determined from the variables including steam flow rate, coal feed rate and air flow rate. Optimum reaction condition was determined from the concentrations of $H_{2}$, and CO in the product gas. The ratio of air/coal was 4.45 and that of steam/coal was 0.21 respectively. The concentrations of CO and $H_{2}$ decreased with the increase of $CO_{2}$. It is important to control the feed rates of coal and steam because the reaction temperature rapidly increased when the combustion reaction dominates over the gasification reaction. The concentrations of CO and $H_{2}$ were 18%, 17% respectively from the continuous operating condition.

Chlorination of Uranium Dioxide for the preparation of Uranium Tetrachloride (사염화우라늄 제조를 위한 이산화우라늄의 염소화반응)

  • Yang, Yeong-Seok;Hwang, Seong-Chan;Ju, Geun-Sik;Lee, Hong-Gi;Gang, Yeong-Ho
    • Korean Journal of Materials Research
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    • v.7 no.4
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    • pp.317-321
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    • 1997
  • 사염화우라늄 제조를 위해 염소가스와 탄소를 이용한 이산화우라늄의 염소화반응에 대하여 연구하였다. 이론적측면에서 열화학적 자료를 이용한 계산을 통하여 일어날 수 있는 반응들을 확인하였으며, 염소화반응이 진행되는 동안 초래될 현상에 대하여 검토하였다. 실험결과로 부터 반응온도, 반응시간 및 질소가스 주입비율이 사염화우라늄 제조에 미치는 영향을 정량적으로 평가하였다. 순수한 이산화우라늄을 사용한 사염화우라늄 제조공정에서의 적절한 반응시간과 반응온도는 각각 약 2시간과 50$0^{\circ}C$-$700^{\circ}C$범위였으며, 질소가스의 적정 주입량은 염소가스의 약 50%로 나타났다.

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Production of Hydrogen by Thermochemical Transition of Lauan Sawdust in Steam Reforming Gasification (수증기개질 가스화반응을 이용한 나왕톱밥으로부터 수소제조특성)

  • Park, Sung-Jin;Kim, Lae-Hyun;Shin, Hun-Yong
    • Korean Chemical Engineering Research
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    • v.50 no.5
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    • pp.908-912
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    • 2012
  • Lauan sawdust was gasified by steam reforming for hydrogen production from biomass waste. The fixed bed gasification reactor with 1m height and 10.2 cm diameter was utilized for the analysis of temperature and catalysts effect. Steam was injected to the gasification reactor for the steam reforming effect. Lauan sawdust was mixed with potassium carbonate, sodium carbonate, calcium carbonate, sodium carbonate + potassium carbonate and magnesium carbonate + calcium carbonate catalysts of constant mass fraction of 8:2 which was injected to the fixed gasification equipment. The compositions of production gas of gasification reaction were analyzed at the temperature range from $400^{\circ}C$ to $700^{\circ}C$. Fractions of hydrogen, methane and carbon monoxide gas in the production gas increased when catalysts were used. Fractions of hydrogen, methane and carbon monoxide gas were increased with increasing temperature. The highest hydrogen yield was obtained with sodium carbonate catalyst.

Experimental Study on char-$CO_2$ Gasification Reactivity of Indonesia ROTO Subbituminous Coal (인도네시아 ROTO탄의 Char-$CO_2$ 가스화 반응성 실험 연구)

  • 고경호;안달홍;김종진
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1999.11a
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    • pp.3-9
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    • 1999
  • IGCC(Integrated Gasification Combined Cycle)에서 석탄가스화기는 기존 석탄화력발전소의 보일러를 대체하는 설비로서, 석탄가스화 공정의 해석은 매우 중요하다고 할 수 있다. 석탄가스화 공정은 탄종과 운전조건에 따라 반응특성의 편차가 매우 크기 때문에 탄종별 가스화 특성에 대한 정보의 확보는 필수적이라 할 수 있다. 그러나 국내에는 수입되는 다양한 석탄에 대한 가스화 특성에 대한 정보가 없는 실정이다.(중략)

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The Computer-Aided Simulation Study on the Gasification Characteristics of the Roto Coal in the Partitioned Fluidized-Bed Gasifier (상용모사기를 이용한 로토석탄의 분할유동층 가스화기 가스화 특성 모사)

  • Park, Young Cheol;Moon, Jong-Ho;Lee, Seung-Yong;Lee, Dong-Ho;Jin, Gyoung Tae
    • Korean Chemical Engineering Research
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    • v.50 no.3
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    • pp.511-515
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    • 2012
  • In this study, we used a commercial simulator to investigate the gasification characteristics of Roto coal in the partitioned fluidized-bed gasifier, which consists of 4 parts such as coal pyrolysis, char gasification, tar/oil gasification and char combustion. The heating medium was exchanged between the combustion part and the gasification part in order to supply the energy needed for pyrolysis and gasification. The correlation model from experimental data in relation to the reaction temperatures, the reaction gases and the coal feed rates was derived for the coal pyrolysis. The equilibrium model was used for the gasification and the combustion model for the char combustion. In order to compare the reaction behavior of the partitioned fluidized-bed gasifier, the single-bed gasifier was also simulated. The cold gas efficiency of both partitioned fluidized-bed gasifier and single-bed gasifier was almost the same. The $H_2$ and $CH_4$ contents of the syngas in the partitioned fluidized-bed gasifier slightly increased and the CO and $CO_2$ contents slightly decreased, compared with the singlebed gasifier. In order to verify the model, ten cases of the single-bed gasification experiment have been simulated. The contents of CO, $CO_2$, $CH_4$ in the syngas from the simulation corresponded with the experimental data while those of $H_2$ was slightly higher than experimental data, but the tendency of $H_2$ content in the syngas was similar to the experiments. In the coal conversion, the simulation results were higher than the experiments since equilibrium model was used for the gasification so that the residence time and contact time in the model is different from the experiments.

The Gasification of Coal in a Fluidized Bed Reactor (유동층 반응기에서의 석탄 가스화 반응 특성)

  • 이운재;이종민;김상돈
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1994.11a
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    • pp.80-83
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    • 1994
  • 본 실험에서는 상압 유동층 반응기 (0.1 m-1.D x 1.6 m-high) 에서 호주탄의 가스화반응 특성을 공기와 스팀을 사용하여 살펴보았다. 유동화 속도 (2-5 u$_{mf}$), 공기/석탄비(1.6-3.2), 스팀/석탄비 (0.63-1.26), 그리고 반응 온도 (750 - 90$0^{\circ}C$) 가 생성 가스의 조성, 발열량, 수율 및 탄소 전환율에 미치는 영향을 고찰하였다. 입자 비산속도는 유동화 속도가 증가함에 따라 증가하였으나, 층온도가 증가함에 따라 감소하는 경향을 나타내었다. 생성가스의 발열량 및 탄소 전환율 그리고 가스 수율은 유동화 속도 및 층 온도가 증가함에 따라 증가하였으나, 발열량은 공기/석탄비가 증가함에 따라 감소하는 경향을 나타내었다.

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Hydrogen production by plasma pyrolysis-gasification of waste (폐기물의 플라즈마 열분해-가스화에 의한 수소생산)

  • Lee, Jin-Ho;Kim, Young-Suk;Do, Chul-Jin;Hwang, Soon-Mo;Jeong, Seong-Jae
    • 한국신재생에너지학회:학술대회논문집
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    • 2007.11a
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    • pp.627-632
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    • 2007
  • 폐기물의 플라즈마를 이용한 열분해-가스화-용융 처리공정은 청정연료 형태로 정화된 합성가스를 얻을 수 있고, 이 합성가스를 WGS 반응과 PSA 공법을 이용하면 고순도 수소로의 전환 및 회수가 가능하다. (주)애드플라텍에서는 자체 보유하고 있는 3톤/일급 플라즈마 폐기물 처리설비와 수소 정제/회수시스템을 연계하여, 폐기물로부터 고순도 수소 생산 ($20Nm^3/h$ 이상)을 위한 플라즈마 폐기물 처리 수소 생산 통합시스템 개발을 진행하고 있다. 합성가스 내 질소 농도를 낮추기 위해 산소를 매질로 하는 100kW급 산소 플라즈마 토치를 제작 하였다. 수소 정제/회수 시스템은 폐기물의 플라즈마 처리 후의 합성가스 생성량과 조성의 변화에 대응할 수 있도록 하였으며 WGS 반응기로 들어가는 합성가스를 가스 컴프레서를 통하여 최대 10기압으로 승압시키고, 고농도 일산화탄소의 효과적인 제거 및 열 회수 극대화가 이루어질 수 있는 최적의 가스처리 시스템으로 구현되도록 하였다. 설치 완료된 WGS 반응기의 성능시험이 플라즈마 처리설비와 연계하여 수행되었으며 WGS 반응기를 거친 일산화탄소의 농도는 1.5% 미만으로 분석되었다. 차기 년도에 설치/가동 예정인 수소 생산용 PSA는 최대 10기압 운전 및 상압재생 방식으로 운전되며 생산된 수소는 최소 99.99%이상의 고순도를 유지할 것으로 기대된다.

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