Reaction Characteristics of Five Kinds of Oxygen Carrier Particles for Chemical-Looping Combustor

매체순환식 가스연소기 적용을 위한 5가지 산소공여입자들의 반응특성

  • 류호정 (한국에너지기술연구원 청정에너지연구부) ;
  • 진경태 (한국에너지기술연구원 청정에너지연구부) ;
  • 임남윤 (한양대학교 화학공학과) ;
  • 배성렬 (한양대학교 화학공학과)
  • Published : 2003.03.15

Abstract

For gaseous fuel combustion with inherent $CO_2$ capture and low NOx emission, chemical-looping combustion may yield great advantages for the savings of energy to $CO_2$ separation and suppressing the effect on environment, In chemical-looping combustor, fuel is oxidized by metal oxide medium in a reduction reactor. Reduced particles are transported to oxidation reactor and oxidized by air and recycled to reduction reactor. The fuel and the air are never mixed, and the gases from reduction reactor, $CO_2$ and $H_2O$, leave the system as separate stream. The $H_2O$ can be easily separated by condensation and pure $CO_2$ is obtained without any loss of energy for separation. In this study, five oxygen carrier particles such as NiO/bentonite, NiO/YSZ, $(NiO+Fe_2O_3)VYSZ$, $NiO/NiAl_2O_4$, and $Co_{\chi}O_y/CoAl_2O_4$ were examined &om the viewpoints of reaction kinetics, oxygen transfer capacity, and carbon deposition characteristics. Among five oxygen particles, NiO/YSZ particle is superior in reaction rate, oxygen carrier capacity, and carbon deposition to other particles. However, at high temperature ($>900^{\circ}C$), NiO/bentonite particle also shows enough reactivity and oxygen carrier capacity to be applied in a practical system.

Keywords

References

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