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Deactivation of V2O5/TiO2 catalytic system on the sulfuric oxides

V2O5/TiO2 촉매시스템의 황산화물에 대한 비활성화 특성

  • Jang, Hyun Tae (Department of Chemical Engineering, Hanseo University) ;
  • Cha, Wang Seog (Department of Environmental Engineering, Kunsan National University)
  • Received : 2015.10.15
  • Accepted : 2015.11.06
  • Published : 2015.11.30

Abstract

Deactivation characteristics of $V_2O_5/TiO_2$ catalysts were studied for selective catalytic reduction(SCR) of NOx with ammonia in the presence of $SO_2$. Performance of catalyst was investigated for $deNO_x$ activity while changing temperature, $SO_2$ concentration. The activity of catalyst was decreased with the increase of $SO_2$ concentration and reaction time. Also, degree of activity drop was largely decreased with the increase of reaction temperature in the range of $250{\sim}300^{\circ}C$. Physicochemical properties of deactivated catalysts were characterized by BET, XRD, SEM, TPD analysis. According to the analysis results, deactivation phenomena occur due to the relatively high formation of ammonium sulfate salts, which created by unreacted ammonia and water in the presence of $SO_2$. It was revealed that ammonium sulfate cause the pore plogging of support and deposition of active matter.

암모니아를 환원제로 사용하는 선택적 촉매 환원법에서 $V_2O_5/TiO_2$ 촉매를 사용하여 황산화물에 대한 비활성화 특성을 연구하였다. 반응온도와 황산화물 농도를 변경시키면서 촉매의 활성변화를 측정하였다. 촉매의 활성은 황산화물의 농도와 반응시간이 증가할수록 감소하였다. 또한 황산화물에 대한 촉매의 활성감소 정도는 반응온도 $250{\sim}300^{\circ}C$의 범위에서 반응온도가 증가할수록 크게 감소하였다. BET, XRD, SEM, TPD분석을 통해 비활성화된 촉매의 물리화학적인 특성을 조사하였다. 분석결과, 비활성화현상은 황산화물이 존재하는 상태에서 미반응 암모니아, 수분 등이 반응하여 황산암모늄이 생성되기 때문이다. 황산암모늄은 촉매의 기공을 막으며 활성물질에 침적된다.

Keywords

References

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