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황화수소 정제용 아연계 분무건조 탈황제의 활성성분 함량 변경에 따른 물성 및 반응 특성

The Effect of ZnO Content on the Performance of Spray-dried Zn-based Desulfurization Sorbent for H2 Cleanup

  • 백점인 (한국전력공사 전력연구원) ;
  • 엄태형 (한국전력공사 전력연구원) ;
  • 이중범 (한국전력공사 전력연구원) ;
  • 제갈성 (한국전력공사 전력연구원) ;
  • 류청걸 (한국전력공사 전력연구원)
  • 투고 : 2014.07.18
  • 심사 : 2014.10.31
  • 발행 : 2014.10.30

초록

Gaseous sulfur compound such as $H_2S$ or COS in coal- or biomass-derived hot syngas can be purified by solid sorbents at high temperatures. In this study, we investigated the physical properties and reactivity of solid regenerable desulfurization sorbents with 37.2, 41.9, and 46.5wt% ZnO to look into the ZnO content effect. The sorbents were produced by spray-drying method to apply to a fluidized-bed process. Sulfidation and regeneration reaction were carried out using a thermogravimetric analyzer. Sorbent prepared with 46.5wt% ZnO had physical properties suitable for a fluidized-bed process applications such as spherical shape, sufficient mechanical strength and density, high porosity and surface area. It showed high sulfur sorption capacity of 10.4wt% (ZnO utilization of 57%) at reaction temperatures of 500 and $650^{\circ}C$ for sulfidation and regeneration, respectively. However, the sulfur sorption capacity and ZnO utilization were significantly reduced and dimple shape appeared when the ZnO content decreased to 37.2 and 41.9wt%. Sulfur sorption capacity and regenerability were improved as reaction temperature increased within the experimental temperatures used in this work. The reaction temperature zones of $1500{\sim}550^{\circ}C$ and $650{\sim}700^{\circ}C$ are recommended for sulfidation and regeneration, respectively, to lead best reaction performances of the ZnO-based spray-dried sorbents developed in this work.

키워드

참고문헌

  1. United States Department of Energy, "Gsification Systems: Technology Program Plan", January 2013.
  2. Nexant, "Preliminary Feasibility Analysis of RTI Warm Gas Cleanup(WGCU) Technology", 2007.
  3. P. J. Woolcock and R. C. Brown, "A review of cleaning technologies for biomass-derived syngas", Biomass and Bioenergy, Vol. 52, 2013, pp. 54-84. https://doi.org/10.1016/j.biombioe.2013.02.036
  4. R. W. R. Zwart, "Gas cleaning downstream biomass gasification: Status Report 2009", ECN, Netherlands, June 2009.
  5. J. B. Lee, J.-I. Baek, C. K. Ryu, C. K. Yi, S. H. Jo and S. H. Kim, "Highly attrition-resistant zinc oxide-based sorbents for $H_2S$ removal by spraydrying technique", Ind. Eng. Chem. Res., Vol. 47, 2008, pp. 4454-4464.
  6. J. B. Lee, C. K. Ryu, C. K. Yi, S. H. Jo and S. H. Kim, "Screening of zinc-based sorbents for hot-gas desulfurization", Energy Fuels, Vol. 22, 2008, pp. 1021-1026. https://doi.org/10.1021/ef7004089
  7. D.-H. Kim, J.-Y. Kim, S.-H. Jo, Y. C. Park, J.-H. Moon, C. K. Yi and J.-I. Baek, "A Study of hydrodynamics and reaction characteristics in relation to desulfurization temperatures of Zn-based solid sorbent in the lab-scale high pressure and high temperature desulfurization process", Korean Chem. Eng. Res., Vol. 50, No. 3, 2012, pp. 492-498. https://doi.org/10.9713/kcer.2012.50.3.492
  8. Y. C. Park, S.-H. Jo, H.-J. Ryu, J.-H. Moon, C.- K. Yi, Y.-S. Yoon and J.-I. Baek, "Simultaneous removal of $H_2S$ and COS using Zn-based solid sorbents in the bench-scale continuous hot gas desulfurization system integrated with a coal gasifier", Korean J. Chem. Eng., Vol. 29, No. 12, 2012, pp. 1812-1816. https://doi.org/10.1007/s11814-012-0059-3