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Oxygen Permeation and Syngas Production of La0.7Sr0.3Ga0.6Fe0.4O Oxygen Permeable Membrane

La0.7Sr0.3Ga0.6Fe0.4O 분리막의 산소투과특성 및 합성가스의 생성

  • 이시우 (한국과학기술원 재료공학과) ;
  • 이승영 (한국에너지기술연구원 에너지재료연구센터) ;
  • 이기성 (한국에너지기술연구원 에너지재료연구센터) ;
  • 정경원 (대주전자재료㈜) ;
  • 김도경 (한국과학기술원 재료공학과) ;
  • 우상국 (한국에너지기술연구원 에너지재료연구센터)
  • Published : 2003.06.01

Abstract

L $a_{0.7}$S $r_{0.3}$G $a_{0.6}$F $e_{0.4}$ $O_{3-}$$\delta$/ perovskite-type mixed conducting membranes, which could permeate oxygen selectively, have been fabricated and the microstructural features developed by varying the sintering conditions have been analyzed. The effects of surface modification and the membrane thickness on oxygen permeability have been evaluated under He/air environment. With increasing a grain boundary fraction, the overall oxygen permeability decreased. The syngas (CO+ $H_2$) has been produced by partial oxidation reaction of methane with the oxygen permeated through the membrane. Methane conversion and syngas yield have been evaluated as functions of the compositional ratio of feed gas and reaction temperature. In long-term duration test for 600 h, under C $H_4$+He/air environment, L $a_{0.7}$S $r_{0.3}$G $a_{0.6}$F $e_{0.4}$ $O_{3-}$$\delta$/ membrane showed a highly stable performance.

산소분자를 선택적으로 투과.분리할 수 있는 L $a_{0.7}$S $r_{0.3}$G $a_{0.6}$F $e_{0.4}$ $O_{3-}$$\delta$/ 페롭스카이트계 혼합전도성 산소투과 분리막을 제조하였으며, 소결조건에 따라 발현되는 미세구조적 특징을 고찰하였다. He/air 분위기하에서 분리막의 산소투과 유속에 미치는 분리막의 두께 및 표면개질의 영향을 평가하여 속도결정단계에 대하여 논의하였다. 미세구조가 조절된 분리막에 대하여 산소투과유속을 측정함으로써, 입계분율의 증가에 따라 산소투과에 대한 저항이 증가함을 알 수 있었다. 분리막을 통하여 선택적으로 투과된 산소를 이용하여 메탄의 부분산화반응에 의한 합성가스를 생성하였으며, 메탄의 전환율 및 합성가스의 수율을 측정.평가하였다. 기체의 혼합비 및 반응온도의 변화를 통해 합성가스 생성의 적정조건을 선택할 수 있었으며, 600시간의 장기 안정성 시험을 통해, L $a_{0.7}$S $r_{0.3}$G $a_{0.6}$F $e_{0.4}$ $O_{3-}$$\delta$/ 계 산소투과 분리막이 고온의 극심한 환원분위기하에서 안정적으로 사용이 가능한 것으로 판단하였다.

Keywords

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