• Title/Summary/Keyword: Co-gasification

Search Result 237, Processing Time 0.023 seconds

Understanding Coal Gasification and Combustion Modeling in General Purpose CFD Code (범용 CFD 코드에서 석탄 가스화 및 연소 모델링에 관한 이해)

  • Lee, Hoo-Kyung;Choi, Sang-Min;Kim, Bong-Keun
    • Journal of the Korean Society of Combustion
    • /
    • v.15 no.3
    • /
    • pp.15-24
    • /
    • 2010
  • The purpose of this study is to assess approaches to modeling coal gasification and combustion in general purpose CFD codes. Coal gasification and combustion involve complex multiphase flows and chemical reactions with strong influences of turbulence and radiation. CFD codes would treat coal particles as a discrete phase and gas species are considered as a continuous phase. An approach to modeling coal reaction in $FLUENT^{(R)}$, selected in this study as a typical commercial CFD code, was evaluated including its devolatilization, gas phase reactions, and char oxidation, turbulence, and radiation submodels. CFD studies in the literature were reviewed to show the uncertainties and limitations of the results. Therefore, the CFD analysis gives useful information, but the results should be carefully interpreted based on understandings on the uncertainties associated with the modelings of coal gasification and combustion.

Development and Assessment of a Downdraft Gasifier for Biomass Gasification (하향식 바이오매스 가스화장치의 개발 및 평가)

  • Hong, Seong-Gu;Shim, Jae-Hoon
    • Journal of The Korean Society of Agricultural Engineers
    • /
    • v.50 no.4
    • /
    • pp.89-97
    • /
    • 2008
  • A downdraft gasifier was manufactured for biomass gasification. The gasifier was designed based on the principles of gasification presented in previous studies. The pipes of 25mm diameter were used for both supplying air and discharging producer gas. Wood charcoals were mostly used for fuels. The concentration of CO ranged from 25 to 35%, comparable to the values presented in other studies. The temperature outside wall of the gasifier was measured up to $400^{\circ}C$, indicating a great heat loss. When glass wool was cover over the wall, some parts of wire mesh located in the bottom of the reactor were molten down. There were several modifications that should be made in order to improve its efficiency and obtain more stable continuous gasification, including insulation, reduction in pressure loss, durable bottom meshes, the optimum length of reaction part, and safety.

A Study on Recycling Technology of Wastes by Using PGV(Plasma Gasification & Vitrification) System (PGV(Plasma Gasification & Vitrification) 시스템을 통한 폐기물의 자원화 기술)

  • Rhyew, David;Kim, Young Suk
    • Plant Journal
    • /
    • v.4 no.4
    • /
    • pp.62-70
    • /
    • 2008
  • PGV(Plasma Gasification & Vitrification) system has been developed based on a pyrolysis melting gasification technology that provides the possibilities of acquiring renewable energy. As volume of wastes increases with the rapid industrialization and population growth, eco friendly disposal is drawing more social attention. Pyrolysis plasma technology is regarded as the best environmentally friendly process for the waste disposal among numerous waste disposal processes. Introduced in this paper is the behavior of the plasma torch and a computational fluid simulation dynamics is discussed for designing the melting furnace. Some PGV applications have also been discussed.

  • PDF

Comparison of catalytic activity through gas-solid reaction models in CO2 gasification of lignite with alkali metal salts and iron sulfate (알칼리금속염과 철황산염을 촉매로 한 갈탄의 CO2 가스화반응에서 기체-고체 반응모델을 적용한 촉매활성의 비교)

  • Bungay, Vergel C.;Song, Byungho
    • Journal of Energy Engineering
    • /
    • v.23 no.1
    • /
    • pp.58-66
    • /
    • 2014
  • Catalytic gasification of a low rank coal- Inner Mongolian lignite has been carried out with carbon dioxide. The gasification reactions were performed in a thermogravimetric analyzer at temperatures of $600^{\circ}C$ to $900^{\circ}C$. The kinetic parameters were evaluated using three different gas-solids reaction models and the prediction ability of each model were compared. Among the models evaluated, the modified volumetric model was found to correlate best both the non-catalytic and catalytic gasification reactions. The theoretical models, homogeneous and shrinking-core models, were found to satisfactorily correlate gasification reactions for the non-catalytic and $FeSO_4$-catalyzed reactions. In case of alkali metal catalysts, the catalytic activity was mostly pronounced at a low temperature of $600^{\circ}C$ and observed to decrease by 50% as the temperature was increased to $700^{\circ}C$, and it remained nearly constant at temperature over $800^{\circ}C$. The order of catalytic activity was found to be: $K_2CO_3$ > $Na_2CO_3$ > $K_2SO_4$ > $FeSO_4$.

Deactivation Behavior of K2CO3 Catalyst in the Steam Gasification of Kideco Coal (Kideco 석탄의 스팀 가스화 반응에서 K2CO3 촉매의 비활성화 거동)

  • VICTOR, PAUL;KIM, SOOHYUN;YOO, JIHO;LEE, SIHYUN;RHIM, YOUNGJOON;LIM, JEONGHWAN;KIM, SANGDO;CHUN, DONGHYUK;CHOI, HOKYUNG;RHEE, YOUNGWOO
    • Transactions of the Korean hydrogen and new energy society
    • /
    • v.27 no.5
    • /
    • pp.517-525
    • /
    • 2016
  • The present work investigates the effect of $K_2CO_3$ catalyst on steam gasification of Kideco coal and the deactivation of the catalyst due to thermal exposure and interaction with coal ash. The gasification reactivity at $700^{\circ}C$ is highly enhanced by $K_2CO_3$, which is not deactivated by the heat treatment at $T{\leq}800^{\circ}C$. TGA and XRD results prove minor decomposition of $K_2CO_3$ after the calcination at $800^{\circ}C$. $K_2CO_3$ is, however, evaporated at the higher temperature. Assuming the conversion of $K_2CO_3$ into $K_2O$ by the decomposition and into $K_2O{\cdot}2.5SiO_2$ and $KAlO_2$ by the interaction with coal ash, the reactivity of the gasification is evaluated in the presence of $K_2O$, $K_2O{\cdot}2.5SiO_2$ and $KAlO_2$. Among them, $K_2O$ is the most active, but much lower in the activity than $K_2CO_3$. XRD results show that $K_2CO_3$ could react readily with the ash above $700^{\circ}C$.

Development of Innovation DME Process from Natural Gas and Biomass in KOREA (천연가스와 바이오매스로부터 개선된 DME 공정의 개발)

  • Cho, Wonjun;Song, Taekyong;Baek, Youngsoon;Kim, Seung-Soo
    • 한국신재생에너지학회:학술대회논문집
    • /
    • 2010.11a
    • /
    • pp.107-107
    • /
    • 2010
  • Hydrogen is an alternative fuel for the future energy which can reduce pollutants and greenhouse gases. Synthesis gas have played an important role of synthesizing the valuable chemical compound, for example methanol, DME and GTL chemicals. Renewable biomass feedstocks can be potentially used for fuels and chemical production. Current thermal processing techniques such as fast pyrolysis, slow pyrolysis, and gasification tend to generate products with a large slate of compounds. Lignocellulose feedstocks such as forest residues are promising for the production of bio-oil and synthesis gas. Pyrolysis and gasification was investigated using thermogravimetric analyzer (TGA) and bubbling fluidized bed gasification reactor to utilize forest woody biomass. Most of the materials decomposed between $320^{\circ}C$ and $380^{\circ}C$ at heating rates of $5{\sim}20^{\circ}C/min$ in thermogravimetric analysis. Bubbling fluidized bed reactor were use to study gasification characteristics, and the effects of reaction temperature, residence time and feedstocks on gas yields and selectivities were investigated. With increasing temperature from $750^{\circ}C$ to $850^{\circ}C$, the yield of char decreased, whereas the yield of gas increased. The gaseous products consisted of mostly CO, CO2, H2 and a small fraction of C1-C4 hydrocarbons.

  • PDF

The Effect on the Steam Gasification Reaction of Low-Rank Coal Mixed with Waste Catalysts (저급 석탄과 혼합한 폐촉매의 수증기 가스화 반응에 미치는 영향)

  • Kwak, Jaehoon;Seo, Seokjin;Lee, Sojung;Song, Bungho;Sohn, Jung Min
    • Transactions of the Korean hydrogen and new energy society
    • /
    • v.23 no.6
    • /
    • pp.647-653
    • /
    • 2012
  • We have investigated the kinetics and activity of waste catalysts for steam-lignite gasification. Waste catalysts I, II, III and reference $K_2CO_3$ were used and physical mixed with a coal. The gasification experiments were carried out with the low rank coal loaded with 1 wt% and 5 wt% catalyst at the temperature range from 700 to $900^{\circ}C$ using thermobalance reactor. It was observed that the carbon conversion reached almost 100% regardless of the kinds of catalysts at $900^{\circ}C$. The shortest time to reach the designated conversion was obtained for 1 wt% waste catalyst II and 5 wt% $K_2CO_3$ at $900^{\circ}C$. The gasification reaction rate constant increased with increasing the temperature. Highest rate constant was obtained with $K_2CO_3$ at $900^{\circ}C$. The lowest activation energy was 69.42 kJ/mol for 5 wt% waste catalyst II. The waste catalyst had an influence on the reduction of activation energy.

Kinetic Study of Coal/Biomass Blended Char-CO2 Gasification Reaction at Various temperature (다양한 온도에서 석탄/바이오매스의 혼합 촤-CO2 가스화 반응특성 연구)

  • Kim, Jung Su;Kim, Sang Kyum;Cho, Jong Hoon;Lee, Si Hoon;Rhee, Young Woo
    • Korean Chemical Engineering Research
    • /
    • v.53 no.6
    • /
    • pp.746-754
    • /
    • 2015
  • In this study, we investigated the effects of the temperature on the coal/biomass $char-CO_2$ gasification reaction under isothermal conditions of $700{\sim}900^{\circ}C$ using the lignite(Indonesia Eco coal) with biomass (korea cypress). Ni catalysts were impregnated on the coal by the ion-exchange method. Four kinetic models which are shrinking core model (SCM), volumetric reaction model (VRM), random pore model (RPM) and modified volumetric reaction model (MVRM) for gas-solid reaction were applied to the experimental data against the measured kinetic data. The Activation energy of Ni-coal/biomass, non-catalyst coal/biomass $Char-CO_2$ gasification was calculated from the Arrhenius equation.

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
    • /
    • 1999.11a
    • /
    • pp.3-9
    • /
    • 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)

  • PDF

Hydrogen Conversion of Syngas by Using WGS Reaction in a Coal Gasifier (가스화기에서 WGS 반응을 통한 합성가스의 수소 전환)

  • Lee, See Hoon;Kim, Jung Nam;Eom, Won Hyun;Baek, Il Hyun
    • Transactions of the Korean hydrogen and new energy society
    • /
    • v.24 no.1
    • /
    • pp.12-19
    • /
    • 2013
  • A gasification process with pre-combustion $CO_2$ capture process, which converts coal into environment-friendly synthetic gas, might be promising option for sustainable energy conversion. In the coal gasification for power generation, coal is converted into $H_2$, CO and $CO_2$. To reduce the cost of $CO_2$ capture and to maximize hydrogen production, the removal of CO and the additional production of hydrogen might be needed. In this study, a 2l/min water gas shift system for a coal gasifier has been studied. To control the concentration of major components such as $H_2$, CO, and $CO_2$, MFCs were used in experimental apparatus. The gas concentration in these experiments was equal with syngas concentration from dry coal gasifiers ($H_2$: 25-35, CO: 60-65, $CO_2$: 5-15 vol%). The operation conditions of the WGS system were $200-400^{\circ}C$, 1-10bar. Steam/Carbon ratios were between 2.0 and 5.0. The commercial catalysts were used in the high temperature shift reactor and the low temperature shift reactor. As steam/carbon ratio increased, the conversion (1-$CO_{out}/CO_{in}$) increased from 93% to 97% at the condition of CO: 65, $H_2$: 30, $CO_2$: 5%. However the conversion decreased with increasing of gas flow and temperature. The gas concentration from LTS was $H_2$: 54.7-60.0, $CO_2$: 38.8-44.9, CO: 0.3-1%.