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CO 합성을 위한 저급석탄-CO2 촉매 가스화 반응

Low Grade Coal-CO2 Catalytic Gasification Reaction for CO gas Synthesis

  • Lee, Ho Yong (Department of Chemical Engineering, Chungbuk National University) ;
  • Lee, Jong Dae (Department of Chemical Engineering, Chungbuk National University)
  • 투고 : 2016.07.22
  • 심사 : 2016.09.19
  • 발행 : 2016.09.30

초록

본 연구에서는 합성가스 CO를 생산하기 위해 저급 석탄-$CO_2$ 촉매 가스화 실험을 수행하였다. 제조된 CO가스 특성은 키데코 탄과 신화 탄에 KOH, $K_2CO_3$, $Na_2CO_3$ 촉매들의 화학적 활성화 방법을 이용하여 조사되었다. CO 제조공정은 석탄과 화학약품 활성화 비율, 가스 유량, $CO_2$ 전환 반응온도와 같은 실험 변수 분석을 통해 최적화되었다. 제조된 합성 가스는 가스 크로마토그래피(GC)에 의해 분석 되었다. 실험조건 $T=950^{\circ}C$, $CO_2$ 유량 100 cc/min에서, 20 wt% $Na_2CO_3$가 혼합된 키데코 탄에 대해 98.6%, 20 wt% KOH가 혼합된 신화탄에 대한 98.9% $CO_2$ 전환율을 얻었다. 또한, 저급 석탄-촉매 가스화 반응은 동일한 공급 비와 반응 조건에서 97.8%, 98.8%의 CO 선택도를 얻었다.

In this study, the experiments on optimal CO gas synthesis were conducted using low grade coal-$CO_2$ catalyst gasification reaction. The characteristics of generated CO gas were investigated using the chemical activation method of KOH, $K_2CO_3$, $Na_2CO_3$ catalysts with Kideco and Shewha coal. The preparation process has been optimized through the analysis of experimental variables such as ratio between activating chemical agents and coal, the flow rate of gas and reaction temperature during $CO_2$ conversion reaction. The produced CO gas was analysed by Gas Chromatography (GC). The 98.6% $CO_2$ conversion for Kideco coal mixed with 20 wt% $Na_2CO_3$ and 98.9% $CO_2$ conversion for Shenhua coal mixed with 20 wt% KOH were obtained at the conditions of $T=950^{\circ}C$ and $CO_2$ flow rate of 100 cc/min. Also, the low grade coal-$CO_2$ catalytic gasification reaction showed the CO selectivities(97.8 and 98.8 %) at the same feed ratio and reaction conditions.

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